research communications\(\def\hfill{\hskip 5em}\def\hfil{\hskip 3em}\def\eqno#1{\hfil {#1}}\)

Journal logoCRYSTALLOGRAPHIC
COMMUNICATIONS
ISSN: 2056-9890

Crystal structures of four organic salts of trihexyphenidyl at 90 K

crossmark logo

aDepartment of Studies in Chemistry, University of Mysore, Manasagangotri, Mysuru-570 006, India, and bDepartment of Chemistry, University of Kentucky, Lexington, KY, 40506-0055, USA
*Correspondence e-mail: ybb2706@gmail.com, yathirajan@hotmail.com

Edited by L. Van Meervelt, Katholieke Universiteit Leuven, Belgium (Received 5 July 2023; accepted 7 July 2023; online 14 July 2023)

The syntheses and crystal structure studies of four organic salts of trihexyphenidyl, viz., trihexyphenidylium [1-(3-cyclo­hexyl-3-hy­droxy-3-phenyl­prop­yl)piperidin-1-ium] 4-nitro­benzoate, C20H32NO+·C7H4NO4 (I), trihexyphenidylium 4-hy­droxy­benzoate, C20H32NO+·C7H5O (II), trihexyphenidylium 4-bromo­benzoate, C20H32NO+·C7H4BrO2 (III), and trihexyphenidylium thio­phene-2-carboxyl­ate hemihydrate, 2C20H32NO+·2C5H3O2S·H2O (IV), con­ducted at 90 K are described. Structures I, II, and III are solvent free with one cation–anion pair per asymmetric unit, while IV crystallizes as a hemihydrate, having two cation–anion pairs and one water of crystallization in its asymmetric unit. Structures I and III exhibit configurational disorder of the cation. Structure IV also exhibits disorder, but only of the thio­phene-2-carboxyl­ate anions. Structure II is a non-merohedric twin by a twofold rotation about [403]. The main supra­molecular motifs in I, II, and III are similar R22(10) rings between cation–anion pairs, although their packing within the crystals is distinct. As a consequence of having two cation–anion pairs and a water mol­ecule in its asymmetric unit, the packing in IV is by far the most complex of the four structures, its hydrogen-bonding patterns being quite different from I, II, or III. In all the crystals studied, N—H⋯O, O—H⋯O, and C—H⋯O inter­actions are observed, plus C—H⋯Br close contacts for III.

1. Chemical context

Trihexyphenidyl, systematic name 1-cyclo­hexyl-1-phenyl-3-(piperidin-1-yl)propan-1-ol, is an anti­spasmodic drug used to treat stiffness, tremors, spasms, and poor muscle control. It can be used in the treatment of psychotic depression (Roth et al., 1994[Roth, B. L., Craigo, S. C., Choudhary, M. S., Uluer, A., Monsma, F. J., Shen, Y., Meltzer, H. Y. & Sibley, D. R. (1994). J. Pharmacol. Exp. Ther. 268, 1403-1410.]; Seeman & Tallerico, 1998[Seeman, T. & Tallerico, T. (1998). Mol. Psychiatry, 3, 123-134.]; Silvestre & Prous, 2005[Silvestre, J. S. & Prous, J. (2005). Methods Find. Exp. Clin. Pharmacol. 27, 289-304.]). In addition, trihexyphenidyl is well established as a treatment for symptomatic relief in cases of Parkinson's disease (Doshay et al., 1954[Doshay, L. J., Constable, K. & Zier, A. (1954). J. Am. Med. Assoc. 154, 1334-1336.]). Trihexyphenidyl contains a chiral carbon atom, although medicinal formulations are racemates. It is generally administered as the hydro­chloride salt, the structure of which was published by Maccaroni et al. (2010[Maccaroni, E., Malpezzi, L. & Masciocchi, N. (2010). Acta Cryst. E66, o2511.]), although structures have also been reported for neutral trihexyphenidyl (Camerman & Camerman, 1972[Camerman, N. & Camerman, A. (1972). J. Am. Chem. Soc. 94, 8553-8556.]), and the trihexyphenidylium 3,5-di­nitro­benzoate salt (Shaibah et al., 2019[Shaibah, M. A. E., Yathirajan, H. S., Rathore, R. S., Furuya, T., Haraguchi, T., Akitsu, T. & Glidewell, C. (2019). Acta Cryst. E75, 292-298.]).

In view of the medicinal importance of trihexyphenidyl, this paper reports the crystal structures of some salts of trihexyphenidyl with organic acids, viz., trihexyphenidylium 4-nitro­benzoate, C26H36NO3 (I), trihexyphenidylium 4-hy­droxy­benzoate, C27H37NO4 (II), trihexyphenidylium 4-bromo­benzoate, C27H36NO3Br (III) and trihexyphenidylium thio­phene-2-carboxyl­ate, which crystallizes as a hemihydrate, C25H35NO3S·0.5H2O (IV).

[Scheme 1]

2. Structural commentary

Individual neutral trihexyphenidyl mol­ecules contain a chiral carbon atom. In structures I, II, III, IV, each trihexyphenidylium cation also includes a chiral carbon, with atoms C1 (C1A and C1B in IV) being the stereogenic centre. Nevertheless, medicinal formulations are racemic, and all four crystal structures (Figs. 1[link]–4[link][link][link]) determined here are centrosymmetric and therefore also strictly racemic. Structures I, II, and III are solvent free with one cation–anion pair per asymmetric unit, while IV crystallized as a hemihydrate, having two cation–anion pairs and one water of crystallization in its asymmetric unit.

[Figure 1]
Figure 1
An ellipsoid plot (50%) probability of I. Hydrogen bonds are shown as dashed lines. To enhance clarity, only one component of disorder for the cation is shown.
[Figure 2]
Figure 2
An ellipsoid plot (50%) probability of II. Hydrogen bonds are shown as dashed lines.
[Figure 3]
Figure 3
An ellipsoid plot (50%) probability of III. Hydrogen bonds are shown as dashed lines. To enhance clarity, only one component of disorder for the cation is shown.
[Figure 4]
Figure 4
An ellipsoid plot (50%) probability of IV. Hydrogen bonds are shown as dashed lines. To enhance clarity, only one component of disorder for the anions is shown.

Structures I and III exhibit configurational disorder (see e.g. Parkin et al., 2023[Parkin, S., Glidewell, C. & Horton, P. N. (2023). Acta Cryst. C79, 77-82.]; Vinaya et al., 2023[Vinaya, Basavaraju, Y. B., Srinivasa, G. R., Shreenivas, M. T., Yathirajan, H. S. & Parkin, S. (2023). Acta Cryst. E79, 54-59.]) of the cation. This disorder switches the positions and overlays the phenyl and cyclo­hexyl rings, thereby superimposing R and S isomers in roughly equal refined proportions [0.503 (4):0.497 (4) in I and 0.508 (5):0.492 (5) in III], as shown for I in Fig. 5[link]. Structure IV also exhibits disorder, but of the thio­phene-2-carboxyl­ate anions [major:minor fractions are 0.795 (2):0.805 (2) and 0.953 (2):0.047 (2) for the inequivalent anion sites]. Structure II is a mon-merohedric twin (see e.g. Sevvana et al., 2019[Sevvana, M., Ruf, M., Usón, I., Sheldrick, G. M. & Herbst-Irmer, R. (2019). Acta Cryst. D75, 1040-1050.]; Parkin, 2021[Parkin, S. R. (2021). Acta Cryst. E77, 452-465.]) by a twofold rotation about [403], with similar twin-component fractions [0.5298 (9) and 0.4702 (9)]. The treatment of disorder and twinning are described in more detail in section 6 (Refinement).

[Figure 5]
Figure 5
Configurational disorder of the trihexyphenidylium cation in I showing the superposition of phenyl and cyclo­hexyl rings. The disorder in III is similar. Hydrogen atoms are omitted.

The conformations of the trihexyphenidylium cations are determined, in large part, by torsion angles about the C1—C2, C2—C3, C3—N1, C1—C9, and C1—C15 bonds. These are qu­anti­fied in Table 1[link], although for ease of comparison, the variability in cation conformations is better illustrated by an overlay plot, shown in Fig. 6[link].

Table 1
Conformation-defining torsion angles (°) for trihexyphenyl­idium cations in I, II, III, IV

The primed (') atoms in I are III are for the second disorder component.

Torsion I II III IVa IVb
O1—C1—C2—C3 −60.52 (14) −60.92 (18) 54.5 (2) −72.04 (17) −43.38 (16)
C1—C2—C3—N1 152.29 (11) 147.37 (15) −152.27 (17) 140.13 (14) −179.42 (12)
C2—C3—N1—C4 59.11 (15) 58.13 (19) −70.0 (2) 154.13 (13) 83.03 (15)
O1—C1—C9—C10 −25.1 (5) −13.2 (2) −23.8 (2) −20.6 (2) −9.16 (19)
O1—C1—C15—C16 49.4 (7) 58.47 (19) 57.2 (6) −72.32 (18) 61.74 (16)
O1—C1—C9′—C10′ 17.5 (8) - 21.4 (4) - -
O1—C1—C15′—C16′ 168.6 (4) - 178.8 (5) - -
[Figure 6]
Figure 6
An overlay of five independent trihexyphenidylium cations from structures I, II, III, and IV, showing the conformational variability.

3. Supra­molecular features

The main supra­molecular motifs in I, II, and III are R22(10) hydrogen-bonded rings involving N—H and O—H donors from the cations and the carboxyl­ate group of their respective anions. These ring structures are shown in the ellipsoid plots (Figs. 1[link]–3[link][link]), while Figs. 7[link]–9[link][link] show how they pack within their unit cells.

[Figure 7]
Figure 7
A partial packing plot of I, viewed approximately down the a-axis. Hydrogen bonds are drawn as dotted lines. Hydrogen atoms not involved in hydrogen bonds are omitted.
[Figure 8]
Figure 8
A partial packing plot of II, viewed approximately down the b-axis. Hydrogen bonds are drawn as dotted lines. Hydrogen atoms not involved in hydrogen bonds are omitted.
[Figure 9]
Figure 9
A partial packing plot of III, viewed approximately down the a-axis. Hydrogen bonds are drawn as dotted lines. Hydrogen atoms not involved in hydrogen bonds are omitted.

For I there are no other strong inter­molecular inter­actions, though there is a weaker C4—H4B⋯O1i [symmetry code: (i) x − 1, y, z] contact between mol­ecules adjacent along the a-axis direction. See Table 2[link] for details.

Table 2
Hydrogen-bond geometry (Å, °) for I[link]

D—H⋯A D—H H⋯A DA D—H⋯A
O1—H1O⋯O3 0.88 (2) 1.90 (2) 2.7527 (15) 164.5 (19)
N1—H1N⋯O2 1.01 (2) 1.65 (2) 2.6618 (15) 172.6 (18)
C4—H4B⋯O1i 0.99 2.57 3.2972 (17) 130
Symmetry code: (i) [x-1, y, z].

In II, the 4-hy­droxy group of the anion is also involved in hydrogen bonding (Fig. 8[link]). Atom O3 of the carboxyl­ate acts as a bifurcated acceptor for the N1—H1N⋯O3 hydrogen bond within the R22(10) ring and for an O4ii—H4Oii⋯O3 [symmetry code: (ii) x, −y, z − [{1\over 2}]] hydrogen bond. There are also a few weaker C—H⋯O inter­actions. All these inter­actions are qu­anti­fied in Table 3[link].

Table 3
Hydrogen-bond geometry (Å, °) for II[link]

D—H⋯A D—H H⋯A DA D—H⋯A
O1—H1O⋯O2 0.88 (3) 1.94 (3) 2.8068 (18) 165 (2)
N1—H1N⋯O3 0.94 (2) 1.76 (2) 2.6908 (19) 169.4 (17)
C2—H2A⋯O2 0.99 2.57 3.277 (2) 129
C4—H4B⋯O1i 0.99 2.40 3.278 (2) 148
C7—H7A⋯O3 0.99 2.64 3.314 (2) 126
O4—H4O⋯O3ii 0.82 (2) 1.84 (3) 2.6633 (18) 176 (3)
C26—H26⋯O3ii 0.95 2.62 3.281 (2) 127
Symmetry codes: (i) [x, -y+1, z+{\script{1\over 2}}]; (ii) [x, -y, z-{\script{1\over 2}}].

In III, in addition to the aforementioned ring motif, there are short contacts between C3—H3A and Br1 of a screw-related (−x + [{3\over 2}], y + [{1\over 2}], −z + [{3\over 2}]) anion and between C4—H4A and O3 of a translation-related (x − 1, y, z) anion. Full details are given in Table 4[link]. A view of the packing is shown in Fig. 9[link].

Table 4
Hydrogen-bond geometry (Å, °) for III[link]

D—H⋯A D—H H⋯A DA D—H⋯A
N1—H1N⋯O2 0.95 (2) 1.67 (3) 2.606 (3) 172 (2)
O1—H1O⋯O3 0.81 (3) 1.94 (3) 2.733 (2) 167 (3)
C3—H3A⋯Br1i 0.99 2.85 3.739 (2) 149
C4—H4A⋯O3ii 0.99 2.39 3.348 (3) 162
Symmetry codes: (i) [-x+{\script{3\over 2}}, y+{\script{1\over 2}}, -z+{\script{3\over 2}}]; (ii) [x-1, y, z].

As a result of having two cation–anion pairs and a water mol­ecule in the asymmetric unit, the packing in IV is by far the most complex of the four structures. Its hydrogen-bonding patterns are quite different from I, II, or III. In fact the hydrogen-bonding motifs involving the `AC' and `BD' cation–anion pairs are themselves distinct. For the `A' cation, the N1A—H1NA group is an asymmetric bifurcated hydrogen-bond donor to O1C and O2C [dD⋯A = 2.7084 (17) and 3.3355 (18) Å, respectively]. The hydroxyl group of cation A forms a hydrogen bond (as donor) to O2C of a translation-related (via x + 1, y, z) anion. These combine to form AC cation–anion chains that extend parallel to the a-axis (Fig. 10[link], upper chain). The BD cation–anion pair plus the water mol­ecule form an R33(12) hydrogen-bonded ring motif that includes N1B—H1NB⋯O1D, O1B—H1OB⋯O1W, and O1W—H2W1⋯O2D within the chosen asymmetric unit (Table 5[link], Figs. 4[link] and 10[link]). The water mol­ecule also forms a hydrogen bond to O1D of a translation-related (x + 1, y, z) anion. The net result of these hydrogen bonds are cation–anion–water chains that also propagate along the a-axis direction (Fig. 10[link], lower chain). The only contacts between these two types of chain are weak (Table 5[link]).

Table 5
Hydrogen-bond geometry (Å, °) for IV[link]

D—H⋯A D—H H⋯A DA D—H⋯A
O1A—H1OA⋯O2Ci 1.00 (2) 1.72 (2) 2.7143 (16) 172.3 (18)
N1A—H1NA⋯O1C 0.933 (18) 1.793 (18) 2.7084 (17) 166.4 (16)
N1A—H1NA⋯O2C 0.933 (18) 2.606 (18) 3.3355 (18) 135.4 (14)
C4A—H4AB⋯O1Aii 0.99 2.51 3.407 (2) 150
C5A—H5AA⋯O2D 0.99 2.54 3.358 (2) 139
C8A—H8AA⋯O2Ci 0.99 2.29 3.283 (2) 177
O1B—H1OB⋯O1W 0.88 (2) 1.85 (2) 2.7186 (18) 169.5 (18)
N1B—H1NB⋯O1D 0.955 (18) 1.700 (18) 2.6497 (17) 172.8 (16)
C3B—H3BB⋯O1W 0.99 2.61 3.295 (2) 126
O1W—H1W1⋯O1Di 0.84 (3) 1.86 (3) 2.6873 (18) 171 (2)
O1W—H2W1⋯O2D 0.81 (3) 1.98 (3) 2.775 (2) 171 (3)
Symmetry codes: (i) x+1, y, z; (ii) [x-1, y, z].
[Figure 10]
Figure 10
A partial packing plot of IV, viewed approximately down the b-axis. Hydrogen bonds are drawn as dotted lines. Hydrogen atoms not involved in hydrogen bonds are omitted.

4. Database survey

A search within the Cambridge Structural Database (CSD, v5.43 including all updates through November 2022; Groom et al., 2016[Groom, C. R., Bruno, I. J., Lightfoot, M. P. & Ward, S. C. (2016). Acta Cryst. B72, 171-179.]) for an unsubstituted trihexyphenidyl structure fragment returned 16 hits, but only five of them bear any similarity to the trihexyphenidylium cation in I, II, III, and IV. CSD entry THEXPL (Camerman & Camerman, 1972[Camerman, N. & Camerman, A. (1972). J. Am. Chem. Soc. 94, 8553-8556.]) is a single-crystal structure of neutral trihexyphenidyl. Refcode KUZDIT (Maccaroni et al., 2010[Maccaroni, E., Malpezzi, L. & Masciocchi, N. (2010). Acta Cryst. E66, o2511.]) is trihexyphenidyl hydro­chloride, obtained via powder diffraction, and GODJAN (Shaibah et al., 2019[Shaibah, M. A. E., Yathirajan, H. S., Rathore, R. S., Furuya, T., Haraguchi, T., Akitsu, T. & Glidewell, C. (2019). Acta Cryst. E75, 292-298.]) is a single-crystal study of the trihexyphenidylium 3,5-di­nitro­benzoate salt. The remaining two structures are PCYDIN10 (Camerman & Camerman, 1971[Camerman, N. & Camerman, A. (1971). Mol. Pharmacol. 7, 406-412.]) and DODWAU (Tacke et al., 1986[Tacke, R., Linoh, H., Schomburg, D., Ernst, L., Moser, U., Mutschler, E. & Lambrecht, G. (1986). Liebigs Ann. Chem. pp. 242-250.]). The former is the anti-psychotic medication procyclidine hydro­chloride, which has a pyrrolidinium ring in place of the piperidinium ring in I, II, III, and IV. The latter is (R)-tricyclamol iodide, which has an N-methyl-pyrrolidinium ring.

5. Crystallization

A solution of commercially available trihexyphenidyl (a gift from RL Fine Chem., Bengaluru, India) (150 mg, 0.50 mol) in methanol (10 ml) was mixed with equimolar solutions of the appropriate acids in methanol (10 ml) viz., 4-nitro­benzoic acid (84 mg, 0.50 mol) for I, and in methanol (5 ml) and aceto­nitrile (5 ml) for 4-hy­droxy­benzoic acid (69 mg, 0.5 mol) (II), 4-bromo­benzoic acid (101 mg, 0.50 mol) (III) and thio­phene-2-carb­oxy­lic acid (64 mg, 0.50 mol) (IV). The resulting solutions were stirred for 30 minutes at 333 K and allowed to stand at room temperature. X-ray quality crystals were formed on slow evaporation over the course of a week for all of the compounds. The melting points were 409–411 K (I), 425–427 K (II), 395–396 K and (III) 368–369 K (IV).

6. Refinement

Crystal data, data collection, and refinement statistics are given in Table 6[link]. For all structures, diffraction data were collected with the crystals at 90 K. Non-disordered hydrogen atoms were located in difference-Fourier maps. Those bound to nitro­gen or oxygen were refined freely, but carbon-bound hydrogens were included using riding models with constrained distances of 0.95 Å (Csp2—H), 0.99 Å (R2CH2), and 1.00 Å (R3CH) using Uiso(H) values constrained to 1.2Ueq of the attached carbon atom. Cation disorder in I and III was modelled using similar combinations of restraints (SHELXL commands SADI, SAME, DFIX, FLAT) and constraints (SHELXL command EADP). Disorder of the thio­phene-2-carboxyl­ate anions in IV corresponded to a ∼180° flip of the thio­phene ring, which is common for thio­phene, and was modelled using geometry restraints (SAME and FLAT) and displacement parameter constraints (EADP). Structure II was twinned by non-merohedry, corresponding to a twofold rotation about the real-space direction [403]. Diffraction data were integrated using two orientation matrices and scaled/merged following standard procedures (see e.g. Sevvana et al., 2019[Sevvana, M., Ruf, M., Usón, I., Sheldrick, G. M. & Herbst-Irmer, R. (2019). Acta Cryst. D75, 1040-1050.]), and the model refined against both twin components in the usual manner (SHELXL-format HKLF 5 datafile and a BASF parameter to define their relative volume fractions).

Table 6
Experimental details

  I II III IV
Crystal data
Chemical formula C20H32NO+·C7H4NO4 C20H32NO+·C7H5O C20H32NO+·C7H4BrO2 2C20H32NO+·2C5H3O2S·H2O
Mr 468.58 439.57 502.48 877.21
Crystal system, space group Triclinic, P[\overline{1}] Monoclinic, C2/c Monoclinic, P21/n Triclinic, P[\overline{1}]
Temperature (K) 90 90 90 90
a, b, c (Å) 6.2568 (5), 11.7542 (14), 16.9162 (19) 45.098 (2), 8.5314 (5), 12.3516 (6) 6.2422 (4), 17.8126 (14), 21.9938 (19) 6.2765 (3), 18.5390 (13), 20.6383 (14)
α, β, γ (°) 85.329 (3), 79.534 (4), 87.785 (3) 90, 101.789 (2), 90 90, 97.345 (3), 90 89.710 (2), 81.600 (2), 88.977 (2)
V3) 1219.0 (2) 4652.0 (4) 2425.4 (3) 2375.3 (3)
Z 2 8 4 2
Radiation type Mo Kα Mo Kα Mo Kα Mo Kα
μ (mm−1) 0.09 0.08 1.72 0.16
Crystal size (mm) 0.30 × 0.21 × 0.04 0.25 × 0.20 × 0.04 0.20 × 0.08 × 0.07 0.16 × 0.12 × 0.11
 
Data collection
Diffractometer Bruker D8 Venture dual source Bruker D8 Venture dual source Bruker D8 Venture dual source Bruker D8 Venture dual source
Absorption correction Multi-scan (SADABS; Krause et al., 2015[Krause, L., Herbst-Irmer, R., Sheldrick, G. M. & Stalke, D. (2015). J. Appl. Cryst. 48, 3-10.]) Multi-scan (TWINABS; Sheldrick, 2012[Sheldrick, G. M. (2012). TWINABS. University of Göttingen, Germany.]) Multi-scan (SADABS; Krause et al., 2015[Krause, L., Herbst-Irmer, R., Sheldrick, G. M. & Stalke, D. (2015). J. Appl. Cryst. 48, 3-10.]) Multi-scan (SADABS; Krause et al., 2015[Krause, L., Herbst-Irmer, R., Sheldrick, G. M. & Stalke, D. (2015). J. Appl. Cryst. 48, 3-10.])
Tmin, Tmax 0.907, 0.959 0.706, 0.959 0.740, 0.862 0.908, 0.959
No. of measured, independent and observed [I > 2σ(I)] reflections 35646, 5590, 4825 5327, 5327, 4543 40844, 5566, 4634 78578, 10922, 8540
Rint 0.041 0.062 0.049 0.049
(sin θ/λ)max−1) 0.651 0.650 0.650 0.650
 
Refinement
R[F2 > 2σ(F2)], wR(F2), S 0.047, 0.107, 1.11 0.041, 0.090, 1.03 0.037, 0.074, 1.13 0.042, 0.101, 1.03
No. of reflections 5590 5327 5566 10922
No. of parameters 355 303 334 603
No. of restraints 68 0 68 168
H-atom treatment H atoms treated by a mixture of independent and constrained refinement H atoms treated by a mixture of independent and constrained refinement H atoms treated by a mixture of independent and constrained refinement H atoms treated by a mixture of independent and constrained refinement
Δρmax, Δρmin (e Å−3) 0.30, −0.19 0.28, −0.28 0.33, −0.38 0.71, −0.30
Computer programs: APEX3 (Bruker, 2016[Bruker (2016). APEX3. Bruker-AXS Inc., Madison, Wisconsin, USA.]), SHELXT (Sheldrick, 2015a[Sheldrick, G. M. (2015a). Acta Cryst. A71, 3-8.]), SHELXL2019/2 (Sheldrick, 2015b[Sheldrick, G. M. (2015b). Acta Cryst. C71, 3-8.]), XP in SHELXTL and SHELX (Sheldrick, 2008[Sheldrick, G. M. (2008). Acta Cryst. A64, 112-122.]), Mercury (Macrae et al., 2020[Macrae, C. F., Sovago, I., Cottrell, S. J., Galek, P. T. A., McCabe, P., Pidcock, E., Platings, M., Shields, G. P., Stevens, J. S., Towler, M. & Wood, P. A. (2020). J. Appl. Cryst. 53, 226-235.]) and publCIF (Westrip, 2010[Westrip, S. P. (2010). J. Appl. Cryst. 43, 920-925.]).

Supporting information


Computing details top

For all structures, data collection: APEX3 (Bruker, 2016); cell refinement: APEX3 (Bruker, 2016); data reduction: APEX3 (Bruker, 2016); program(s) used to solve structure: SHELXT (Sheldrick, 2015a); program(s) used to refine structure: SHELXL2019/2 (Sheldrick, 2015b); molecular graphics: XP in SHELXTL (Sheldrick, 2008) and Mercury (Macrae et al., 2020); software used to prepare material for publication: SHELX (Sheldrick, 2008) and publCIF (Westrip, 2010).

1-(3-Cyclohexyl-3-hydroxy-3-phenylpropyl)piperidin-1-ium 4-nitrobenzoate (I) top
Crystal data top
C20H32NO+·C7H4NO4Z = 2
Mr = 468.58F(000) = 504
Triclinic, P1Dx = 1.277 Mg m3
a = 6.2568 (5) ÅMo Kα radiation, λ = 0.71073 Å
b = 11.7542 (14) ÅCell parameters from 9957 reflections
c = 16.9162 (19) Åθ = 2.2–27.5°
α = 85.329 (3)°µ = 0.09 mm1
β = 79.534 (4)°T = 90 K
γ = 87.785 (3)°Plate, colourless
V = 1219.0 (2) Å30.30 × 0.21 × 0.04 mm
Data collection top
Bruker D8 Venture dual source
diffractometer
5590 independent reflections
Radiation source: microsource4825 reflections with I > 2σ(I)
Detector resolution: 7.41 pixels mm-1Rint = 0.041
φ and ω scansθmax = 27.6°, θmin = 2.1°
Absorption correction: multi-scan
(SADABS; Krause et al., 2015)
h = 87
Tmin = 0.907, Tmax = 0.959k = 1515
35646 measured reflectionsl = 2121
Refinement top
Refinement on F2Secondary atom site location: difference Fourier map
Least-squares matrix: fullHydrogen site location: mixed
R[F2 > 2σ(F2)] = 0.047H atoms treated by a mixture of independent and constrained refinement
wR(F2) = 0.107 w = 1/[σ2(Fo2) + (0.0274P)2 + 0.7788P]
where P = (Fo2 + 2Fc2)/3
S = 1.11(Δ/σ)max < 0.001
5590 reflectionsΔρmax = 0.30 e Å3
355 parametersΔρmin = 0.19 e Å3
68 restraintsExtinction correction: SHELXL-2019/2 (Sheldrick 2008), Fc*=kFc[1+0.001xFc2λ3/sin(2θ)]-1/4
Primary atom site location: structure-invariant direct methodsExtinction coefficient: 0.0101 (18)
Special details top

Experimental. The crystal was mounted using polyisobutene oil on the tip of a fine glass fibre, which was fastened in a copper mounting pin with electrical solder. It was placed directly into the cold gas stream of a liquid-nitrogen based cryostat (Hope, 1994; Parkin & Hope, 1998).

Diffraction data were collected with the crystal at 90K, which is standard practice in this laboratory for the majority of flash-cooled crystals.

Geometry. All esds (except the esd in the dihedral angle between two l.s. planes) are estimated using the full covariance matrix. The cell esds are taken into account individually in the estimation of esds in distances, angles and torsion angles; correlations between esds in cell parameters are only used when they are defined by crystal symmetry. An approximate (isotropic) treatment of cell esds is used for estimating esds involving l.s. planes.

Refinement. Refinement progress was checked using Platon (Spek, 2020) and by an R-tensor (Parkin, 2000). The final model was further checked with the IUCr utility checkCIF.

Fractional atomic coordinates and isotropic or equivalent isotropic displacement parameters (Å2) top
xyzUiso*/UeqOcc. (<1)
O10.82422 (17)0.32282 (9)0.66770 (6)0.0204 (2)
H1O0.781 (3)0.3907 (18)0.6831 (12)0.037 (5)*
N10.28880 (18)0.3218 (1)0.83935 (7)0.0149 (2)
H1N0.343 (3)0.4029 (18)0.8331 (12)0.040 (5)*
C20.4351 (2)0.30509 (12)0.69168 (8)0.0173 (3)
H2A0.4155650.3890990.6913400.021*
H2B0.3128410.2748440.6705450.021*
C30.4311 (2)0.25491 (12)0.77785 (8)0.0185 (3)
H3A0.3792400.1756880.7829160.022*
H3B0.5811170.2517980.7891380.022*
C40.0570 (2)0.33002 (12)0.82710 (9)0.0191 (3)
H4A0.0002990.2523260.8288880.023*
H4B0.0499860.3686970.7733740.023*
C50.0824 (2)0.39645 (12)0.89201 (9)0.0223 (3)
H5A0.2357270.3975980.8844230.027*
H5B0.0339010.4763260.8866190.027*
C60.0675 (3)0.34350 (13)0.97607 (9)0.0260 (3)
H6A0.1537180.3903901.0171190.031*
H6B0.1277070.2659150.9835200.031*
C70.1686 (3)0.33709 (13)0.98665 (8)0.0233 (3)
H7A0.2247050.4152310.9834900.028*
H7B0.1790460.2998091.0404860.028*
C80.3055 (2)0.26997 (12)0.92196 (8)0.0187 (3)
H8A0.4592910.2685570.9289760.022*
H8B0.2561450.1902180.9278140.022*
C10.6509 (2)0.27540 (12)0.63673 (8)0.0164 (3)
C90.6913 (11)0.1497 (8)0.6352 (4)0.0153 (7)0.503 (4)
C100.9061 (5)0.1091 (3)0.6302 (2)0.0200 (6)0.503 (4)
H101.0174420.1616370.6307230.024*0.503 (4)
C110.9611 (8)0.0066 (3)0.6246 (3)0.0202 (8)0.503 (4)
H111.1078590.0326210.6214410.024*0.503 (4)
C120.7960 (9)0.0841 (6)0.6235 (3)0.0200 (8)0.503 (4)
H120.8309480.1630270.6192280.024*0.503 (4)
C130.5802 (7)0.0449 (4)0.6288 (3)0.0217 (8)0.503 (4)
H130.4685330.0973860.6286530.026*0.503 (4)
C140.5286 (14)0.0713 (6)0.6344 (5)0.0185 (6)0.503 (4)
H140.3818290.0973030.6377960.022*0.503 (4)
C150.639 (2)0.3364 (10)0.5511 (7)0.0156 (12)0.503 (4)
H150.5954410.4177650.5597900.019*0.503 (4)
C160.863 (2)0.3384 (9)0.4978 (8)0.0172 (13)0.503 (4)
H16A0.9145450.2591780.4880270.021*0.503 (4)
H16B0.9671160.3732630.5258470.021*0.503 (4)
C170.858 (2)0.4059 (9)0.4174 (7)0.0191 (5)0.503 (4)
H17A0.8187160.4867170.4268450.023*0.503 (4)
H17B1.0044140.4034800.3833900.023*0.503 (4)
C180.695 (2)0.3579 (7)0.3737 (6)0.0202 (12)0.503 (4)
H18A0.7409790.2791320.3602100.024*0.503 (4)
H18B0.6909130.4049320.3227360.024*0.503 (4)
C190.471 (2)0.3569 (10)0.4260 (8)0.0188 (12)0.503 (4)
H19A0.3682180.3217640.3977800.023*0.503 (4)
H19B0.4204770.4363530.4351000.023*0.503 (4)
C200.475 (2)0.2905 (11)0.5065 (8)0.0191 (10)0.503 (4)
H20A0.5111360.2093200.4974240.023*0.503 (4)
H20B0.3285510.2945310.5402560.023*0.503 (4)
C9'0.662 (2)0.3164 (9)0.5487 (7)0.0156 (12)0.497 (4)
C10'0.851 (2)0.3635 (8)0.5021 (8)0.0172 (13)0.497 (4)
H10'0.9739690.3723730.5265100.021*0.497 (4)
C11'0.862 (2)0.3977 (9)0.4201 (7)0.0191 (5)0.497 (4)
H11'0.9916240.4294510.3895560.023*0.497 (4)
C12'0.682 (2)0.3850 (7)0.3834 (6)0.0202 (12)0.497 (4)
H12'0.6882410.4079630.3279140.024*0.497 (4)
C13'0.492 (2)0.3382 (10)0.4292 (8)0.0188 (12)0.497 (4)
H13'0.3691440.3293900.4046410.023*0.497 (4)
C14'0.482 (2)0.3043 (11)0.5110 (8)0.0191 (10)0.497 (4)
H14'0.3527730.2726350.5415270.023*0.497 (4)
C15'0.7100 (12)0.1425 (8)0.6432 (4)0.0153 (7)0.497 (4)
H15'0.7308950.1229540.6999470.018*0.497 (4)
C16'0.5296 (15)0.0665 (6)0.6297 (6)0.0200 (6)0.497 (4)
H16C0.3914530.0877220.6646300.024*0.497 (4)
H16D0.5092020.0785310.5728990.024*0.497 (4)
C17'0.5852 (7)0.0584 (4)0.6487 (3)0.0202 (8)0.497 (4)
H17C0.4677200.1060940.6382870.024*0.497 (4)
H17D0.5944300.0713300.7065740.024*0.497 (4)
C18'0.7999 (9)0.0947 (6)0.5981 (3)0.0200 (8)0.497 (4)
H18C0.8386530.1737900.6160980.024*0.497 (4)
H18D0.7834650.0935450.5409110.024*0.497 (4)
C19'0.9794 (8)0.0169 (4)0.6051 (4)0.0217 (8)0.497 (4)
H19C1.1108680.0366680.5660670.026*0.497 (4)
H19D1.0147630.0297290.6598960.026*0.497 (4)
C20'0.9217 (5)0.1084 (2)0.5897 (3)0.0185 (6)0.497 (4)
H20C0.9076890.1240370.5323980.022*0.497 (4)
H20D1.0404720.1553170.5998580.022*0.497 (4)
O20.40809 (17)0.53766 (9)0.83371 (6)0.0228 (2)
O30.71358 (18)0.52200 (9)0.74198 (6)0.0271 (3)
O41.0546 (2)1.02209 (11)0.85879 (11)0.0526 (4)
O50.7218 (2)1.07163 (11)0.90394 (11)0.0524 (4)
N20.8591 (2)1.00387 (12)0.87272 (10)0.0365 (4)
C210.5869 (2)0.57318 (12)0.79342 (8)0.0179 (3)
C220.6545 (2)0.68961 (11)0.81174 (8)0.0170 (3)
C230.8706 (2)0.72132 (12)0.78779 (8)0.0191 (3)
H230.9720570.6717090.7578320.023*
C240.9384 (2)0.82466 (12)0.80738 (9)0.0214 (3)
H241.0857570.8461620.7918360.026*
C250.7863 (3)0.89562 (12)0.85005 (10)0.0246 (3)
C260.5694 (3)0.86797 (13)0.87355 (11)0.0287 (4)
H260.4676300.9189670.9019920.034*
C270.5057 (2)0.76343 (12)0.85422 (9)0.0223 (3)
H270.3584030.7420360.8702350.027*
Atomic displacement parameters (Å2) top
U11U22U33U12U13U23
O10.0231 (5)0.0180 (5)0.0231 (5)0.0037 (4)0.0100 (4)0.0046 (4)
N10.0161 (6)0.0155 (6)0.0135 (5)0.0013 (4)0.0030 (4)0.0018 (4)
C20.0211 (7)0.0168 (7)0.0149 (6)0.0012 (5)0.0049 (5)0.0026 (5)
C30.0202 (7)0.0192 (7)0.0157 (7)0.0044 (5)0.0022 (5)0.0031 (5)
C40.0171 (7)0.0188 (7)0.0229 (7)0.0018 (5)0.0063 (5)0.0035 (5)
C50.0186 (7)0.0185 (7)0.0281 (8)0.0008 (5)0.0001 (6)0.0006 (6)
C60.0306 (8)0.0181 (7)0.0240 (8)0.0012 (6)0.0080 (6)0.0008 (6)
C70.0370 (9)0.0178 (7)0.0137 (7)0.0004 (6)0.0010 (6)0.0003 (5)
C80.0233 (7)0.0183 (7)0.0145 (6)0.0008 (5)0.0043 (5)0.0009 (5)
C10.0177 (6)0.0171 (7)0.0155 (6)0.0039 (5)0.0045 (5)0.0028 (5)
C90.0155 (11)0.0162 (11)0.0147 (12)0.0003 (9)0.0040 (9)0.0019 (9)
C100.0188 (13)0.0194 (14)0.0221 (14)0.0033 (10)0.0039 (9)0.0018 (9)
C110.0217 (15)0.0168 (13)0.024 (2)0.0003 (10)0.0081 (11)0.0012 (9)
C120.0237 (9)0.0163 (13)0.020 (3)0.0006 (8)0.0031 (17)0.0017 (19)
C130.0210 (15)0.0209 (14)0.025 (2)0.0009 (10)0.0069 (11)0.0045 (10)
C140.0134 (12)0.0168 (13)0.0243 (15)0.0006 (9)0.0004 (9)0.0043 (9)
C150.017 (2)0.013 (3)0.0174 (8)0.001 (2)0.0035 (11)0.0007 (16)
C160.0158 (13)0.018 (4)0.0177 (12)0.002 (2)0.0027 (10)0.004 (2)
C170.0177 (8)0.0186 (12)0.0192 (9)0.0011 (8)0.0009 (6)0.0005 (9)
C180.0247 (15)0.019 (4)0.015 (2)0.001 (3)0.0024 (15)0.001 (2)
C190.0205 (19)0.018 (3)0.0185 (10)0.0010 (18)0.0055 (11)0.0008 (18)
C200.0167 (9)0.024 (2)0.0173 (13)0.0028 (13)0.0033 (8)0.0019 (15)
C9'0.017 (2)0.013 (3)0.0174 (8)0.001 (2)0.0035 (11)0.0007 (16)
C10'0.0158 (13)0.018 (4)0.0177 (12)0.002 (2)0.0027 (10)0.004 (2)
C11'0.0177 (8)0.0186 (12)0.0192 (9)0.0011 (8)0.0009 (6)0.0005 (9)
C12'0.0247 (15)0.019 (4)0.015 (2)0.001 (3)0.0024 (15)0.001 (2)
C13'0.0205 (19)0.018 (3)0.0185 (10)0.0010 (18)0.0055 (11)0.0008 (18)
C14'0.0167 (9)0.024 (2)0.0173 (13)0.0028 (13)0.0033 (8)0.0019 (15)
C15'0.0155 (11)0.0162 (11)0.0147 (12)0.0003 (9)0.0040 (9)0.0019 (9)
C16'0.0188 (13)0.0194 (14)0.0221 (14)0.0033 (10)0.0039 (9)0.0018 (9)
C17'0.0217 (15)0.0168 (13)0.024 (2)0.0003 (10)0.0081 (11)0.0012 (9)
C18'0.0237 (9)0.0163 (13)0.020 (3)0.0006 (8)0.0031 (17)0.0017 (19)
C19'0.0210 (15)0.0209 (14)0.025 (2)0.0009 (10)0.0069 (11)0.0045 (10)
C20'0.0134 (12)0.0168 (13)0.0243 (15)0.0006 (9)0.0004 (9)0.0043 (9)
O20.0253 (5)0.0184 (5)0.0243 (5)0.0074 (4)0.0022 (4)0.0011 (4)
O30.0324 (6)0.0253 (6)0.0235 (6)0.0079 (5)0.0002 (5)0.0103 (4)
O40.0333 (7)0.0273 (7)0.1028 (13)0.0086 (6)0.0199 (8)0.0171 (7)
O50.0425 (8)0.0214 (6)0.0975 (12)0.0029 (6)0.0154 (8)0.0250 (7)
N20.0337 (8)0.0158 (7)0.0639 (11)0.0020 (6)0.0171 (7)0.0070 (7)
C210.0240 (7)0.0163 (7)0.0146 (6)0.0039 (5)0.0069 (5)0.0007 (5)
C220.0223 (7)0.0151 (6)0.0145 (6)0.0039 (5)0.0065 (5)0.0022 (5)
C230.0219 (7)0.0192 (7)0.0158 (6)0.0026 (5)0.0024 (5)0.0005 (5)
C240.0216 (7)0.0195 (7)0.0238 (7)0.0057 (6)0.0071 (6)0.0034 (6)
C250.0277 (8)0.0118 (7)0.0368 (9)0.0027 (6)0.0127 (7)0.0006 (6)
C260.0240 (8)0.0161 (7)0.0473 (10)0.0039 (6)0.0087 (7)0.0067 (7)
C270.0178 (7)0.0182 (7)0.0317 (8)0.0009 (5)0.0068 (6)0.0000 (6)
Geometric parameters (Å, º) top
O1—C11.4358 (16)C18—H18A0.9900
O1—H1O0.88 (2)C18—H18B0.9900
N1—C31.4953 (17)C19—C201.516 (7)
N1—C81.4982 (17)C19—H19A0.9900
N1—C41.5004 (17)C19—H19B0.9900
N1—H1N1.01 (2)C20—H20A0.9900
C2—C31.5235 (18)C20—H20B0.9900
C2—C11.5396 (19)C9'—C10'1.404 (7)
C2—H2A0.9900C9'—C14'1.405 (7)
C2—H2B0.9900C10'—C11'1.401 (6)
C3—H3A0.9900C10'—H10'0.9500
C3—H3B0.9900C11'—C12'1.402 (7)
C4—C51.522 (2)C11'—H11'0.9500
C4—H4A0.9900C12'—C13'1.400 (7)
C4—H4B0.9900C12'—H12'0.9500
C5—C61.522 (2)C13'—C14'1.401 (7)
C5—H5A0.9900C13'—H13'0.9500
C5—H5B0.9900C14'—H14'0.9500
C6—C71.518 (2)C15'—C20'1.522 (7)
C6—H6A0.9900C15'—C16'1.526 (7)
C6—H6B0.9900C15'—H15'1.0000
C7—C81.517 (2)C16'—C17'1.518 (7)
C7—H7A0.9900C16'—H16C0.9900
C7—H7B0.9900C16'—H16D0.9900
C8—H8A0.9900C17'—C18'1.522 (6)
C8—H8B0.9900C17'—H17C0.9900
C1—C91.490 (9)C17'—H17D0.9900
C1—C9'1.517 (11)C18'—C19'1.502 (6)
C1—C151.576 (11)C18'—H18C0.9900
C1—C15'1.592 (10)C18'—H18D0.9900
C9—C101.399 (7)C19'—C20'1.516 (5)
C9—C141.402 (7)C19'—H19C0.9900
C10—C111.397 (5)C19'—H19D0.9900
C10—H100.9500C20'—H20C0.9900
C11—C121.407 (6)C20'—H20D0.9900
C11—H110.9500O2—C211.2661 (17)
C12—C131.399 (6)O3—C211.2431 (18)
C12—H120.9500O4—N21.227 (2)
C13—C141.398 (6)O5—N21.226 (2)
C13—H130.9500N2—C251.4698 (19)
C14—H140.9500C21—C221.5197 (19)
C15—C201.519 (7)C22—C271.390 (2)
C15—C161.521 (7)C22—C231.395 (2)
C15—H151.0000C23—C241.386 (2)
C16—C171.523 (7)C23—H230.9500
C16—H16A0.9900C24—C251.382 (2)
C16—H16B0.9900C24—H240.9500
C17—C181.512 (7)C25—C261.387 (2)
C17—H17A0.9900C26—C271.388 (2)
C17—H17B0.9900C26—H260.9500
C18—C191.515 (7)C27—H270.9500
C1—O1—H1O107.8 (13)C17—C18—C19110.3 (6)
C3—N1—C8109.22 (10)C17—C18—H18A109.6
C3—N1—C4112.50 (11)C19—C18—H18A109.6
C8—N1—C4111.30 (11)C17—C18—H18B109.6
C3—N1—H1N108.1 (11)C19—C18—H18B109.6
C8—N1—H1N109.2 (11)H18A—C18—H18B108.1
C4—N1—H1N106.4 (11)C18—C19—C20111.0 (6)
C3—C2—C1111.20 (11)C18—C19—H19A109.4
C3—C2—H2A109.4C20—C19—H19A109.4
C1—C2—H2A109.4C18—C19—H19B109.4
C3—C2—H2B109.4C20—C19—H19B109.4
C1—C2—H2B109.4H19A—C19—H19B108.0
H2A—C2—H2B108.0C19—C20—C15112.1 (7)
N1—C3—C2113.20 (11)C19—C20—H20A109.2
N1—C3—H3A108.9C15—C20—H20A109.2
C2—C3—H3A108.9C19—C20—H20B109.2
N1—C3—H3B108.9C15—C20—H20B109.2
C2—C3—H3B108.9H20A—C20—H20B107.9
H3A—C3—H3B107.8C10'—C9'—C14'118.1 (7)
N1—C4—C5110.64 (11)C10'—C9'—C1121.7 (10)
N1—C4—H4A109.5C14'—C9'—C1120.1 (10)
C5—C4—H4A109.5C11'—C10'—C9'121.3 (7)
N1—C4—H4B109.5C11'—C10'—H10'119.3
C5—C4—H4B109.5C9'—C10'—H10'119.3
H4A—C4—H4B108.1C10'—C11'—C12'119.8 (7)
C4—C5—C6111.42 (12)C10'—C11'—H11'120.1
C4—C5—H5A109.3C12'—C11'—H11'120.1
C6—C5—H5A109.3C13'—C12'—C11'119.5 (7)
C4—C5—H5B109.3C13'—C12'—H12'120.2
C6—C5—H5B109.3C11'—C12'—H12'120.2
H5A—C5—H5B108.0C12'—C13'—C14'120.2 (7)
C7—C6—C5109.47 (12)C12'—C13'—H13'119.9
C7—C6—H6A109.8C14'—C13'—H13'119.9
C5—C6—H6A109.8C13'—C14'—C9'121.0 (7)
C7—C6—H6B109.8C13'—C14'—H14'119.5
C5—C6—H6B109.8C9'—C14'—H14'119.5
H6A—C6—H6B108.2C20'—C15'—C16'109.0 (6)
C8—C7—C6110.62 (12)C20'—C15'—C1114.6 (5)
C8—C7—H7A109.5C16'—C15'—C1114.1 (5)
C6—C7—H7A109.5C20'—C15'—H15'106.1
C8—C7—H7B109.5C16'—C15'—H15'106.1
C6—C7—H7B109.5C1—C15'—H15'106.1
H7A—C7—H7B108.1C17'—C16'—C15'110.7 (6)
N1—C8—C7111.18 (11)C17'—C16'—H16C109.5
N1—C8—H8A109.4C15'—C16'—H16C109.5
C7—C8—H8A109.4C17'—C16'—H16D109.5
N1—C8—H8B109.4C15'—C16'—H16D109.5
C7—C8—H8B109.4H16C—C16'—H16D108.1
H8A—C8—H8B108.0C16'—C17'—C18'111.6 (5)
O1—C1—C9108.1 (3)C16'—C17'—H17C109.3
O1—C1—C9'110.1 (6)C18'—C17'—H17C109.3
O1—C1—C2108.07 (11)C16'—C17'—H17D109.3
C9—C1—C2112.1 (3)C18'—C17'—H17D109.3
C9'—C1—C2114.3 (5)H17C—C17'—H17D108.0
O1—C1—C15109.0 (5)C19'—C18'—C17'111.4 (4)
C9—C1—C15113.1 (5)C19'—C18'—H18C109.4
C2—C1—C15106.3 (5)C17'—C18'—H18C109.4
O1—C1—C15'102.0 (3)C19'—C18'—H18D109.4
C9'—C1—C15'109.1 (5)C17'—C18'—H18D109.4
C2—C1—C15'112.5 (3)H18C—C18'—H18D108.0
C10—C9—C14118.5 (6)C18'—C19'—C20'113.1 (4)
C10—C9—C1117.6 (5)C18'—C19'—H19C109.0
C14—C9—C1123.8 (5)C20'—C19'—H19C109.0
C11—C10—C9121.7 (5)C18'—C19'—H19D109.0
C11—C10—H10119.1C20'—C19'—H19D109.0
C9—C10—H10119.1H19C—C19'—H19D107.8
C10—C11—C12119.0 (4)C19'—C20'—C15'111.7 (4)
C10—C11—H11120.5C19'—C20'—H20C109.3
C12—C11—H11120.5C15'—C20'—H20C109.3
C13—C12—C11119.9 (5)C19'—C20'—H20D109.3
C13—C12—H12120.0C15'—C20'—H20D109.3
C11—C12—H12120.0H20C—C20'—H20D107.9
C14—C13—C12120.1 (5)O5—N2—O4123.33 (14)
C14—C13—H13119.9O5—N2—C25118.52 (14)
C12—C13—H13119.9O4—N2—C25118.15 (14)
C13—C14—C9120.7 (6)O3—C21—O2126.87 (13)
C13—C14—H14119.7O3—C21—C22117.08 (12)
C9—C14—H14119.7O2—C21—C22116.04 (12)
C20—C15—C16109.9 (6)C27—C22—C23119.55 (13)
C20—C15—C1116.1 (9)C27—C22—C21120.94 (13)
C16—C15—C1110.7 (8)C23—C22—C21119.48 (13)
C20—C15—H15106.5C24—C23—C22120.50 (14)
C16—C15—H15106.5C24—C23—H23119.8
C1—C15—H15106.5C22—C23—H23119.7
C15—C16—C17111.3 (6)C25—C24—C23118.38 (14)
C15—C16—H16A109.4C25—C24—H24120.8
C17—C16—H16A109.4C23—C24—H24120.8
C15—C16—H16B109.4C24—C25—C26122.75 (14)
C17—C16—H16B109.4C24—C25—N2118.45 (14)
H16A—C16—H16B108.0C26—C25—N2118.80 (14)
C18—C17—C16111.1 (6)C25—C26—C27117.89 (15)
C18—C17—H17A109.4C25—C26—H26121.1
C16—C17—H17A109.4C27—C26—H26121.1
C18—C17—H17B109.4C26—C27—C22120.92 (14)
C16—C17—H17B109.4C26—C27—H27119.5
H17A—C17—H17B108.0C22—C27—H27119.5
C8—N1—C3—C2176.78 (11)C2—C1—C9'—C10'139.3 (6)
C4—N1—C3—C259.11 (15)C15'—C1—C9'—C10'93.7 (7)
C1—C2—C3—N1152.29 (11)O1—C1—C9'—C14'164.6 (5)
C3—N1—C4—C5178.76 (11)C2—C1—C9'—C14'42.8 (7)
C8—N1—C4—C555.81 (14)C15'—C1—C9'—C14'84.1 (7)
N1—C4—C5—C656.25 (16)C14'—C9'—C10'—C11'0.0 (3)
C4—C5—C6—C756.67 (16)C1—C9'—C10'—C11'177.9 (8)
C5—C6—C7—C856.90 (16)C9'—C10'—C11'—C12'0.0 (3)
C3—N1—C8—C7178.38 (12)C10'—C11'—C12'—C13'0.0 (6)
C4—N1—C8—C756.81 (15)C11'—C12'—C13'—C14'0.0 (8)
C6—C7—C8—N157.53 (15)C12'—C13'—C14'—C9'0.0 (8)
C3—C2—C1—O160.52 (14)C10'—C9'—C14'—C13'0.0 (6)
C3—C2—C1—C958.5 (3)C1—C9'—C14'—C13'177.9 (9)
C3—C2—C1—C9'176.5 (5)O1—C1—C15'—C20'64.7 (6)
C3—C2—C1—C15177.4 (5)C9'—C1—C15'—C20'51.8 (8)
C3—C2—C1—C15'51.3 (3)C2—C1—C15'—C20'179.7 (4)
O1—C1—C9—C1025.0 (5)O1—C1—C15'—C16'168.6 (4)
C2—C1—C9—C10144.1 (3)C9'—C1—C15'—C16'74.9 (7)
C15—C1—C9—C1095.7 (7)C2—C1—C15'—C16'53.1 (5)
O1—C1—C9—C14158.2 (4)C20'—C15'—C16'—C17'58.7 (7)
C2—C1—C9—C1439.1 (5)C1—C15'—C16'—C17'171.8 (5)
C15—C1—C9—C1481.1 (7)C15'—C16'—C17'—C18'57.6 (7)
C14—C9—C10—C110.1 (3)C16'—C17'—C18'—C19'53.0 (6)
C1—C9—C10—C11176.9 (5)C17'—C18'—C19'—C20'51.2 (6)
C9—C10—C11—C120.2 (2)C18'—C19'—C20'—C15'54.0 (6)
C10—C11—C12—C130.5 (5)C16'—C15'—C20'—C19'56.6 (6)
C11—C12—C13—C140.6 (6)C1—C15'—C20'—C19'174.1 (5)
C12—C13—C14—C90.3 (7)O3—C21—C22—C27165.70 (13)
C10—C9—C14—C130.0 (6)O2—C21—C22—C2715.63 (19)
C1—C9—C14—C13176.7 (6)O3—C21—C22—C2316.34 (19)
O1—C1—C15—C20175.6 (5)O2—C21—C22—C23162.33 (13)
C9—C1—C15—C2055.4 (8)C27—C22—C23—C241.2 (2)
C2—C1—C15—C2068.1 (6)C21—C22—C23—C24176.75 (13)
O1—C1—C15—C1649.4 (7)C22—C23—C24—C250.9 (2)
C9—C1—C15—C1670.9 (7)C23—C24—C25—C260.4 (2)
C2—C1—C15—C16165.6 (5)C23—C24—C25—N2178.42 (14)
C20—C15—C16—C1755.2 (7)O5—N2—C25—C24173.37 (16)
C1—C15—C16—C17175.1 (8)O4—N2—C25—C246.1 (2)
C15—C16—C17—C1857.1 (6)O5—N2—C25—C267.8 (2)
C16—C17—C18—C1957.1 (7)O4—N2—C25—C26172.74 (17)
C17—C18—C19—C2056.3 (8)C24—C25—C26—C271.2 (2)
C18—C19—C20—C1556.1 (8)N2—C25—C26—C27177.59 (15)
C16—C15—C20—C1955.1 (7)C25—C26—C27—C220.8 (2)
C1—C15—C20—C19178.3 (8)C23—C22—C27—C260.4 (2)
O1—C1—C9'—C10'17.5 (8)C21—C22—C27—C26177.57 (14)
Hydrogen-bond geometry (Å, º) top
D—H···AD—HH···AD···AD—H···A
O1—H1O···O30.88 (2)1.90 (2)2.7527 (15)164.5 (19)
N1—H1N···O21.01 (2)1.65 (2)2.6618 (15)172.6 (18)
C4—H4B···O1i0.992.573.2972 (17)130
Symmetry code: (i) x1, y, z.
1-(3-Cyclohexyl-3-hydroxy-3-phenylpropyl)piperidin-1-ium 4-hydroxybenzoate (II) top
Crystal data top
C20H32NO+·C7H5OF(000) = 1904
Mr = 439.57Dx = 1.255 Mg m3
Monoclinic, C2/cMo Kα radiation, λ = 0.71073 Å
a = 45.098 (2) ÅCell parameters from 9845 reflections
b = 8.5314 (5) Åθ = 2.4–27.5°
c = 12.3516 (6) ŵ = 0.08 mm1
β = 101.789 (2)°T = 90 K
V = 4652.0 (4) Å3Plate, colourless
Z = 80.25 × 0.20 × 0.04 mm
Data collection top
Bruker D8 Venture dual source
diffractometer
5327 independent reflections
Radiation source: microsource4543 reflections with I > 2σ(I)
Detector resolution: 7.41 pixels mm-1Rint = 0.062
φ and ω scansθmax = 27.5°, θmin = 2.4°
Absorption correction: multi-scan
(TWINABS; Sheldrick, 2012)
h = 5857
Tmin = 0.706, Tmax = 0.959k = 011
5327 measured reflectionsl = 016
Refinement top
Refinement on F2Secondary atom site location: difference Fourier map
Least-squares matrix: fullHydrogen site location: mixed
R[F2 > 2σ(F2)] = 0.041H atoms treated by a mixture of independent and constrained refinement
wR(F2) = 0.090 w = 1/[σ2(Fo2) + (0.0332P)2 + 1.3379P]
where P = (Fo2 + 2Fc2)/3
S = 1.03(Δ/σ)max = 0.001
5327 reflectionsΔρmax = 0.28 e Å3
303 parametersΔρmin = 0.28 e Å3
0 restraintsExtinction correction: SHELXL-2019/2 (Sheldrick 2008), Fc*=kFc[1+0.001xFc2λ3/sin(2θ)]-1/4
Primary atom site location: structure-invariant direct methodsExtinction coefficient: 0.0030 (5)
Special details top

Experimental. The crystal was mounted using polyisobutene oil on the tip of a fine glass fibre, which was fastened in a copper mounting pin with electrical solder. It was placed directly into the cold gas stream of a liquid-nitrogen based cryostat (Hope, 1994; Parkin & Hope, 1998).

Diffraction data were collected with the crystal at 90K, which is standard practice in this laboratory for the majority of flash-cooled crystals.

Geometry. All esds (except the esd in the dihedral angle between two l.s. planes) are estimated using the full covariance matrix. The cell esds are taken into account individually in the estimation of esds in distances, angles and torsion angles; correlations between esds in cell parameters are only used when they are defined by crystal symmetry. An approximate (isotropic) treatment of cell esds is used for estimating esds involving l.s. planes.

Refinement. Refined as a two-component twin.

Fractional atomic coordinates and isotropic or equivalent isotropic displacement parameters (Å2) top
xyzUiso*/Ueq
O10.64503 (3)0.47657 (16)0.23197 (10)0.0197 (3)
H1O0.6394 (5)0.395 (3)0.267 (2)0.037 (6)*
N10.58510 (3)0.60731 (17)0.40624 (11)0.0145 (3)
H1N0.5832 (4)0.499 (3)0.3955 (17)0.023 (5)*
C10.66057 (4)0.5819 (2)0.31582 (14)0.0168 (3)
C20.64073 (3)0.5992 (2)0.40316 (14)0.0166 (3)
H2A0.6380470.4952310.4353760.020*
H2B0.6511170.6683150.4635380.020*
C30.60976 (3)0.6679 (2)0.35289 (14)0.0185 (4)
H3A0.6107260.7834370.3603340.022*
H3B0.6047640.6427100.2729940.022*
C40.59104 (4)0.6392 (2)0.52798 (13)0.0170 (4)
H4A0.5922450.7537530.5411020.020*
H4B0.6106720.5923090.5638760.020*
C50.56583 (4)0.5702 (2)0.57793 (14)0.0185 (4)
H5A0.5696290.5950260.6578840.022*
H5B0.5657900.4547860.5699060.022*
C60.53495 (4)0.6349 (2)0.52184 (14)0.0215 (4)
H6A0.5188710.5819520.5520460.026*
H6B0.5340620.7484440.5375380.026*
C70.52948 (4)0.6091 (2)0.39728 (15)0.0194 (4)
H7A0.5275240.4954430.3812950.023*
H7B0.5102740.6603660.3615650.023*
C80.55528 (3)0.6755 (2)0.34958 (14)0.0183 (4)
H8A0.5517510.6518620.2695000.022*
H8B0.5558560.7908590.3585410.022*
C90.66395 (3)0.7379 (2)0.25866 (14)0.0161 (4)
C100.65862 (4)0.7484 (2)0.14377 (15)0.0203 (4)
H100.6525580.6577200.1002570.024*
C110.66205 (4)0.8899 (2)0.09203 (16)0.0240 (4)
H110.6580870.8953990.0135730.029*
C120.67121 (4)1.0227 (2)0.15405 (16)0.0251 (4)
H120.6738651.1189450.1185110.030*
C130.67646 (4)1.0144 (2)0.26827 (16)0.0222 (4)
H130.6826321.1052830.3114690.027*
C140.67272 (4)0.8732 (2)0.31970 (15)0.0192 (4)
H140.6762270.8688890.3981390.023*
C150.69159 (4)0.5071 (2)0.36817 (14)0.0176 (4)
H150.6869690.4021520.3968600.021*
C160.71081 (4)0.4760 (2)0.28197 (16)0.0244 (4)
H16A0.7164420.5770690.2523710.029*
H16B0.6987550.4155690.2198000.029*
C170.73957 (4)0.3845 (3)0.33156 (16)0.0281 (4)
H17A0.7339410.2784190.3527810.034*
H17B0.7521210.3726680.2749990.034*
C180.75806 (4)0.4665 (3)0.43271 (17)0.0276 (4)
H18A0.7753080.3989360.4667660.033*
H18B0.7663610.5656450.4096790.033*
C190.73880 (4)0.5015 (2)0.51730 (16)0.0254 (4)
H19A0.7509420.5618590.5793180.030*
H19B0.7327010.4017670.5473980.030*
C200.71056 (4)0.5949 (2)0.46637 (15)0.0210 (4)
H20A0.7166030.6981060.4413590.025*
H20B0.6982380.6131780.5229500.025*
O20.61716 (3)0.24225 (15)0.33577 (10)0.0223 (3)
O30.57253 (2)0.30007 (14)0.37676 (10)0.0182 (3)
O40.53273 (3)0.20004 (15)0.00636 (10)0.0197 (3)
H4O0.5455 (5)0.227 (3)0.042 (2)0.042 (7)*
C210.58953 (4)0.2187 (2)0.32616 (14)0.0166 (3)
C220.57456 (3)0.0946 (2)0.24782 (13)0.0145 (3)
C230.54314 (4)0.0716 (2)0.22493 (14)0.0164 (3)
H230.5310160.1260060.2671500.020*
C240.52947 (4)0.0294 (2)0.14147 (15)0.0170 (4)
H240.5081530.0446210.1272280.020*
C250.54707 (4)0.10839 (19)0.07870 (14)0.0150 (3)
C260.57859 (4)0.0913 (2)0.10326 (14)0.0165 (3)
H260.5907880.1482040.0626760.020*
C270.59185 (3)0.0093 (2)0.18711 (14)0.0158 (3)
H270.6132580.0204030.2036860.019*
Atomic displacement parameters (Å2) top
U11U22U33U12U13U23
O10.0239 (6)0.0189 (7)0.0149 (6)0.0060 (5)0.0005 (5)0.0013 (5)
N10.0151 (6)0.0127 (8)0.0153 (7)0.0001 (5)0.0023 (5)0.0009 (6)
C10.0168 (7)0.0178 (9)0.0152 (8)0.0029 (7)0.0021 (6)0.0023 (7)
C20.0160 (8)0.0182 (9)0.0152 (8)0.0016 (7)0.0022 (6)0.0005 (7)
C30.0177 (8)0.0195 (10)0.0182 (8)0.0018 (7)0.0037 (6)0.0046 (7)
C40.0200 (8)0.0175 (9)0.0129 (8)0.0006 (7)0.0018 (6)0.0014 (7)
C50.0247 (8)0.0157 (9)0.0156 (8)0.0018 (7)0.0051 (7)0.0011 (7)
C60.0193 (8)0.0247 (10)0.0220 (9)0.0003 (7)0.0082 (7)0.0045 (8)
C70.0161 (7)0.0187 (10)0.0230 (9)0.0023 (7)0.0028 (7)0.0011 (7)
C80.0175 (8)0.0183 (9)0.0180 (8)0.0045 (7)0.0009 (7)0.0024 (7)
C90.0110 (7)0.0187 (9)0.0189 (8)0.0002 (6)0.0037 (6)0.0007 (7)
C100.0197 (8)0.0219 (10)0.0197 (9)0.0018 (7)0.0054 (7)0.0009 (8)
C110.0242 (9)0.0310 (11)0.0180 (9)0.0001 (8)0.0074 (7)0.0053 (8)
C120.0218 (8)0.0236 (11)0.0314 (11)0.0000 (7)0.0090 (8)0.0094 (8)
C130.0190 (8)0.0189 (10)0.0285 (10)0.0016 (7)0.0048 (7)0.0000 (8)
C140.0183 (8)0.0208 (10)0.0188 (9)0.0002 (7)0.0042 (7)0.0002 (7)
C150.0181 (7)0.0179 (9)0.0172 (9)0.0001 (7)0.0043 (7)0.0005 (7)
C160.0245 (9)0.0300 (11)0.0190 (9)0.0056 (8)0.0053 (7)0.0007 (8)
C170.0251 (9)0.0336 (12)0.0269 (10)0.0092 (8)0.0085 (8)0.0006 (9)
C180.0185 (8)0.0301 (12)0.0340 (11)0.0035 (7)0.0049 (8)0.0031 (9)
C190.0199 (8)0.0295 (11)0.0241 (10)0.0007 (8)0.0018 (7)0.0005 (8)
C200.0181 (8)0.0242 (10)0.0193 (9)0.0012 (7)0.0009 (7)0.0019 (7)
O20.0210 (6)0.0204 (7)0.0252 (7)0.0035 (5)0.0042 (5)0.0029 (6)
O30.0241 (6)0.0147 (6)0.0172 (6)0.0005 (5)0.0074 (5)0.0018 (5)
O40.0187 (6)0.0197 (7)0.0202 (6)0.0009 (5)0.0028 (5)0.0051 (5)
C210.0243 (8)0.0114 (9)0.0146 (8)0.0013 (7)0.0047 (7)0.0063 (7)
C220.0184 (8)0.0118 (8)0.0136 (8)0.0006 (6)0.0038 (6)0.0034 (6)
C230.0202 (8)0.0130 (9)0.0175 (8)0.0022 (7)0.0071 (7)0.0024 (7)
C240.0154 (7)0.0159 (9)0.0201 (9)0.0002 (6)0.0046 (7)0.0021 (7)
C250.0194 (8)0.0104 (8)0.0141 (8)0.0003 (6)0.0010 (6)0.0025 (6)
C260.0191 (8)0.0148 (9)0.0163 (8)0.0037 (6)0.0052 (7)0.0015 (7)
C270.0170 (7)0.0146 (9)0.0151 (8)0.0008 (7)0.0014 (7)0.0040 (7)
Geometric parameters (Å, º) top
O1—C11.440 (2)C13—C141.388 (3)
O1—H1O0.88 (3)C13—H130.9500
N1—C31.496 (2)C14—H140.9500
N1—C41.497 (2)C15—C161.527 (2)
N1—C81.501 (2)C15—C201.530 (2)
N1—H1N0.94 (2)C15—H151.0000
C1—C91.529 (2)C16—C171.530 (2)
C1—C21.543 (2)C16—H16A0.9900
C1—C151.553 (2)C16—H16B0.9900
C2—C31.525 (2)C17—C181.523 (3)
C2—H2A0.9900C17—H17A0.9900
C2—H2B0.9900C17—H17B0.9900
C3—H3A0.9900C18—C191.519 (3)
C3—H3B0.9900C18—H18A0.9900
C4—C51.519 (2)C18—H18B0.9900
C4—H4A0.9900C19—C201.525 (2)
C4—H4B0.9900C19—H19A0.9900
C5—C61.526 (2)C19—H19B0.9900
C5—H5A0.9900C20—H20A0.9900
C5—H5B0.9900C20—H20B0.9900
C6—C71.524 (2)O2—C211.244 (2)
C6—H6A0.9900O3—C211.287 (2)
C6—H6B0.9900O4—C251.362 (2)
C7—C81.517 (2)O4—H4O0.82 (2)
C7—H7A0.9900C21—C221.499 (2)
C7—H7B0.9900C22—C271.392 (2)
C8—H8A0.9900C22—C231.401 (2)
C8—H8B0.9900C23—C241.388 (2)
C9—C141.391 (2)C23—H230.9500
C9—C101.393 (2)C24—C251.392 (2)
C10—C111.389 (3)C24—H240.9500
C10—H100.9500C25—C261.400 (2)
C11—C121.383 (3)C26—C271.383 (2)
C11—H110.9500C26—H260.9500
C12—C131.384 (3)C27—H270.9500
C12—H120.9500
C1—O1—H1O106.6 (15)C13—C12—H12120.3
C3—N1—C4112.50 (13)C12—C13—C14119.97 (18)
C3—N1—C8109.68 (13)C12—C13—H13120.0
C4—N1—C8110.94 (13)C14—C13—H13120.0
C3—N1—H1N109.6 (12)C13—C14—C9121.31 (16)
C4—N1—H1N108.3 (13)C13—C14—H14119.3
C8—N1—H1N105.6 (12)C9—C14—H14119.3
O1—C1—C9106.91 (13)C16—C15—C20109.43 (14)
O1—C1—C2107.21 (13)C16—C15—C1111.85 (14)
C9—C1—C2111.47 (14)C20—C15—C1116.04 (15)
O1—C1—C15107.90 (14)C16—C15—H15106.3
C9—C1—C15112.59 (13)C20—C15—H15106.3
C2—C1—C15110.48 (14)C1—C15—H15106.3
C3—C2—C1111.46 (14)C15—C16—C17111.40 (15)
C3—C2—H2A109.3C15—C16—H16A109.3
C1—C2—H2A109.3C17—C16—H16A109.3
C3—C2—H2B109.3C15—C16—H16B109.3
C1—C2—H2B109.3C17—C16—H16B109.3
H2A—C2—H2B108.0H16A—C16—H16B108.0
N1—C3—C2112.92 (14)C18—C17—C16111.82 (17)
N1—C3—H3A109.0C18—C17—H17A109.3
C2—C3—H3A109.0C16—C17—H17A109.3
N1—C3—H3B109.0C18—C17—H17B109.3
C2—C3—H3B109.0C16—C17—H17B109.3
H3A—C3—H3B107.8H17A—C17—H17B107.9
N1—C4—C5110.01 (13)C19—C18—C17111.13 (14)
N1—C4—H4A109.7C19—C18—H18A109.4
C5—C4—H4A109.7C17—C18—H18A109.4
N1—C4—H4B109.7C19—C18—H18B109.4
C5—C4—H4B109.7C17—C18—H18B109.4
H4A—C4—H4B108.2H18A—C18—H18B108.0
C4—C5—C6111.40 (14)C18—C19—C20111.47 (16)
C4—C5—H5A109.3C18—C19—H19A109.3
C6—C5—H5A109.3C20—C19—H19A109.3
C4—C5—H5B109.3C18—C19—H19B109.3
C6—C5—H5B109.3C20—C19—H19B109.3
H5A—C5—H5B108.0H19A—C19—H19B108.0
C7—C6—C5110.52 (14)C19—C20—C15110.86 (15)
C7—C6—H6A109.5C19—C20—H20A109.5
C5—C6—H6A109.5C15—C20—H20A109.5
C7—C6—H6B109.5C19—C20—H20B109.5
C5—C6—H6B109.5C15—C20—H20B109.5
H6A—C6—H6B108.1H20A—C20—H20B108.1
C8—C7—C6111.06 (14)C25—O4—H4O107.3 (17)
C8—C7—H7A109.4O2—C21—O3123.43 (16)
C6—C7—H7A109.4O2—C21—C22119.08 (15)
C8—C7—H7B109.4O3—C21—C22117.42 (14)
C6—C7—H7B109.4C27—C22—C23118.22 (15)
H7A—C7—H7B108.0C27—C22—C21119.29 (14)
N1—C8—C7111.06 (14)C23—C22—C21122.17 (15)
N1—C8—H8A109.4C24—C23—C22120.95 (15)
C7—C8—H8A109.4C24—C23—H23119.5
N1—C8—H8B109.4C22—C23—H23119.5
C7—C8—H8B109.4C23—C24—C25119.81 (15)
H8A—C8—H8B108.0C23—C24—H24120.1
C14—C9—C10118.00 (16)C25—C24—H24120.1
C14—C9—C1121.08 (15)O4—C25—C24118.21 (14)
C10—C9—C1120.92 (16)O4—C25—C26121.89 (15)
C11—C10—C9120.83 (17)C24—C25—C26119.90 (15)
C11—C10—H10119.6C27—C26—C25119.45 (16)
C9—C10—H10119.6C27—C26—H26120.3
C12—C11—C10120.39 (17)C25—C26—H26120.3
C12—C11—H11119.8C26—C27—C22121.58 (15)
C10—C11—H11119.8C26—C27—H27119.2
C11—C12—C13119.49 (18)C22—C27—H27119.2
C11—C12—H12120.3
O1—C1—C2—C360.92 (18)O1—C1—C15—C1658.47 (19)
C9—C1—C2—C355.77 (18)C9—C1—C15—C1659.3 (2)
C15—C1—C2—C3178.26 (14)C2—C1—C15—C16175.39 (15)
C4—N1—C3—C258.13 (19)O1—C1—C15—C20175.03 (14)
C8—N1—C3—C2177.89 (14)C9—C1—C15—C2067.2 (2)
C1—C2—C3—N1147.37 (15)C2—C1—C15—C2058.1 (2)
C3—N1—C4—C5178.06 (14)C20—C15—C16—C1756.8 (2)
C8—N1—C4—C558.66 (18)C1—C15—C16—C17173.14 (16)
N1—C4—C5—C657.16 (18)C15—C16—C17—C1855.2 (2)
C4—C5—C6—C754.9 (2)C16—C17—C18—C1953.4 (2)
C5—C6—C7—C853.8 (2)C17—C18—C19—C2054.7 (2)
C3—N1—C8—C7176.68 (14)C18—C19—C20—C1557.6 (2)
C4—N1—C8—C758.44 (18)C16—C15—C20—C1958.0 (2)
C6—C7—C8—N155.9 (2)C1—C15—C20—C19174.29 (16)
O1—C1—C9—C14167.46 (14)O2—C21—C22—C270.4 (2)
C2—C1—C9—C1450.6 (2)O3—C21—C22—C27176.72 (15)
C15—C1—C9—C1474.2 (2)O2—C21—C22—C23173.83 (16)
O1—C1—C9—C1013.2 (2)O3—C21—C22—C233.3 (2)
C2—C1—C9—C10130.08 (16)C27—C22—C23—C242.1 (2)
C15—C1—C9—C10105.11 (17)C21—C22—C23—C24171.35 (16)
C14—C9—C10—C110.1 (2)C22—C23—C24—C250.6 (3)
C1—C9—C10—C11179.21 (15)C23—C24—C25—O4176.52 (15)
C9—C10—C11—C120.8 (3)C23—C24—C25—C262.9 (3)
C10—C11—C12—C131.0 (3)O4—C25—C26—C27176.85 (15)
C11—C12—C13—C140.4 (3)C24—C25—C26—C272.6 (2)
C12—C13—C14—C90.5 (3)C25—C26—C27—C220.2 (3)
C10—C9—C14—C130.8 (2)C23—C22—C27—C262.5 (3)
C1—C9—C14—C13178.57 (15)C21—C22—C27—C26171.18 (15)
Hydrogen-bond geometry (Å, º) top
D—H···AD—HH···AD···AD—H···A
O1—H1O···O20.88 (3)1.94 (3)2.8068 (18)165 (2)
N1—H1N···O30.94 (2)1.76 (2)2.6908 (19)169.4 (17)
C2—H2A···O20.992.573.277 (2)129
C4—H4B···O1i0.992.403.278 (2)148
C7—H7A···O30.992.643.314 (2)126
O4—H4O···O3ii0.82 (2)1.84 (3)2.6633 (18)176 (3)
C26—H26···O3ii0.952.623.281 (2)127
Symmetry codes: (i) x, y+1, z+1/2; (ii) x, y, z1/2.
1-(3-Cyclohexyl-3-hydroxy-3-phenylpropyl)piperidin-1-ium 4-bromobenzoate (III) top
Crystal data top
C20H32NO+·C7H4BrO2F(000) = 1056
Mr = 502.48Dx = 1.376 Mg m3
Monoclinic, P21/nMo Kα radiation, λ = 0.71073 Å
a = 6.2422 (4) ÅCell parameters from 9837 reflections
b = 17.8126 (14) Åθ = 2.2–27.5°
c = 21.9938 (19) ŵ = 1.72 mm1
β = 97.345 (3)°T = 90 K
V = 2425.4 (3) Å3Rod, colourless
Z = 40.20 × 0.08 × 0.07 mm
Data collection top
Bruker D8 Venture dual source
diffractometer
5566 independent reflections
Radiation source: microsource4634 reflections with I > 2σ(I)
Detector resolution: 7.41 pixels mm-1Rint = 0.049
φ and ω scansθmax = 27.5°, θmin = 1.9°
Absorption correction: multi-scan
(SADABS; Krause et al., 2015)
h = 88
Tmin = 0.740, Tmax = 0.862k = 2123
40844 measured reflectionsl = 2828
Refinement top
Refinement on F2Primary atom site location: structure-invariant direct methods
Least-squares matrix: fullSecondary atom site location: difference Fourier map
R[F2 > 2σ(F2)] = 0.037Hydrogen site location: mixed
wR(F2) = 0.074H atoms treated by a mixture of independent and constrained refinement
S = 1.13 w = 1/[σ2(Fo2) + (0.0033P)2 + 2.553P]
where P = (Fo2 + 2Fc2)/3
5566 reflections(Δ/σ)max = 0.001
334 parametersΔρmax = 0.33 e Å3
68 restraintsΔρmin = 0.38 e Å3
Special details top

Experimental. The crystal was mounted using polyisobutene oil on the tip of a fine glass fibre, which was fastened in a copper mounting pin with electrical solder. It was placed directly into the cold gas stream of a liquid-nitrogen based cryostat (Hope, 1994; Parkin & Hope, 1998).

Diffraction data were collected with the crystal at 90K, which is standard practice in this laboratory for the majority of flash-cooled crystals.

Geometry. All esds (except the esd in the dihedral angle between two l.s. planes) are estimated using the full covariance matrix. The cell esds are taken into account individually in the estimation of esds in distances, angles and torsion angles; correlations between esds in cell parameters are only used when they are defined by crystal symmetry. An approximate (isotropic) treatment of cell esds is used for estimating esds involving l.s. planes.

Refinement. Refinement progress was checked using Platon (Spek, 2020) and by an R-tensor (Parkin, 2000). The final model was further checked with the IUCr utility checkCIF.

Fractional atomic coordinates and isotropic or equivalent isotropic displacement parameters (Å2) top
xyzUiso*/UeqOcc. (<1)
N10.0077 (3)0.73580 (11)0.72464 (8)0.0168 (4)
H1N0.057 (4)0.6878 (14)0.7274 (11)0.020*
O10.2444 (2)0.71420 (9)0.56823 (7)0.0167 (3)
H1O0.277 (4)0.6811 (15)0.5928 (12)0.025*
C10.0138 (3)0.71331 (12)0.55325 (9)0.0159 (4)
C20.0881 (3)0.70260 (12)0.61312 (9)0.0158 (4)
H2A0.2472560.7060910.6041150.019*
H2B0.0514820.6520580.6300930.019*
C30.0063 (4)0.76191 (13)0.66025 (10)0.0182 (5)
H3A0.1429190.7760980.6542610.022*
H3B0.0978080.8072760.6533830.022*
C40.2313 (3)0.72756 (13)0.74133 (10)0.0170 (5)
H4A0.3139650.6921990.7125430.020*
H4B0.3053740.7768000.7374270.020*
C50.2278 (4)0.69889 (14)0.80611 (10)0.0229 (5)
H5A0.1655780.6476940.8091160.027*
H5B0.3773830.6959610.8163990.027*
C60.0946 (4)0.75021 (18)0.85167 (11)0.0359 (7)
H6A0.1638860.8002100.8517090.043*
H6B0.0868570.7289250.8934730.043*
C70.1317 (4)0.7579 (2)0.83370 (12)0.0497 (9)
H7A0.2166280.7931390.8621340.060*
H7B0.2048080.7085160.8372230.060*
C80.1239 (4)0.78670 (18)0.76852 (11)0.0351 (7)
H8A0.0603030.8376930.7656820.042*
H8B0.2724610.7900330.7574890.042*
C90.0707 (13)0.6559 (4)0.5074 (3)0.0136 (11)0.508 (5)
C100.0709 (11)0.6299 (3)0.4673 (3)0.0173 (14)0.508 (5)
H100.2138210.6491900.4706340.021*0.508 (5)
C110.0044 (10)0.5755 (4)0.4219 (3)0.0235 (14)0.508 (5)
H110.1019190.5588420.3949600.028*0.508 (5)
C120.2045 (12)0.5462 (5)0.4169 (4)0.0273 (17)0.508 (5)
H120.2499790.5093810.3866940.033*0.508 (5)
C130.3456 (12)0.5716 (3)0.4567 (3)0.0207 (13)0.508 (5)
H130.4877210.5516470.4536430.025*0.508 (5)
C140.2813 (14)0.6259 (4)0.5010 (3)0.0136 (12)0.508 (5)
H140.3808150.6429430.5272480.016*0.508 (5)
C150.039 (2)0.7975 (6)0.5267 (4)0.0138 (11)0.508 (5)
H150.0152150.8333250.5601960.017*0.508 (5)
C160.0816 (18)0.8153 (6)0.4728 (4)0.0180 (14)0.508 (5)
H16A0.2377130.8056710.4843590.022*0.508 (5)
H16B0.0296020.7819370.4380200.022*0.508 (5)
C170.049 (2)0.8963 (7)0.4531 (5)0.0236 (9)0.508 (5)
H17A0.1140290.9295260.4865030.028*0.508 (5)
H17B0.1232340.9055690.4167120.028*0.508 (5)
C180.188 (2)0.9152 (6)0.4378 (4)0.0220 (15)0.508 (5)
H18A0.2037450.9695290.4288320.026*0.508 (5)
H18B0.2487170.8872620.4006520.026*0.508 (5)
C190.313 (2)0.8955 (8)0.4901 (6)0.0214 (18)0.508 (5)
H19A0.4687470.9042700.4774110.026*0.508 (5)
H19B0.2659740.9284650.5255600.026*0.508 (5)
C200.277 (2)0.8140 (7)0.5091 (6)0.0169 (11)0.508 (5)
H20A0.3358050.7809070.4747940.020*0.508 (5)
H20B0.3561850.8031430.5444070.020*0.508 (5)
C9'0.049 (2)0.7826 (6)0.5209 (3)0.0138 (11)0.492 (5)
C10'0.1019 (19)0.8232 (7)0.4919 (4)0.0180 (14)0.492 (5)
H10'0.2454950.8049150.4936730.022*0.492 (5)
C11'0.045 (2)0.8903 (7)0.4604 (5)0.0236 (9)0.492 (5)
H11'0.1490520.9168420.4409150.028*0.492 (5)
C12'0.166 (2)0.9180 (6)0.4577 (4)0.0220 (15)0.492 (5)
H12'0.2046840.9635460.4366800.026*0.492 (5)
C13'0.318 (2)0.8781 (8)0.4861 (6)0.0214 (18)0.492 (5)
H13'0.4614700.8964310.4840720.026*0.492 (5)
C14'0.261 (2)0.8112 (8)0.5175 (5)0.0169 (11)0.492 (5)
H14'0.3657770.7847790.5368040.020*0.492 (5)
C15'0.0302 (14)0.6403 (5)0.5099 (4)0.0136 (11)0.492 (5)
H15'0.0243980.5958350.5349380.016*0.492 (5)
C16'0.2696 (15)0.6269 (4)0.4891 (4)0.0173 (14)0.492 (5)
H16C0.3297590.6698330.4638680.021*0.492 (5)
H16D0.3478870.6233330.5253890.021*0.492 (5)
C17'0.3021 (13)0.5547 (4)0.4518 (3)0.0235 (14)0.492 (5)
H17C0.2573590.5113780.4785740.028*0.492 (5)
H17D0.4573950.5488080.4365560.028*0.492 (5)
C18'0.1755 (13)0.5547 (6)0.3986 (4)0.0273 (17)0.492 (5)
H18C0.2350170.5931470.3686080.033*0.492 (5)
H18D0.1904550.5051290.3780420.033*0.492 (5)
C19'0.0624 (11)0.5707 (4)0.4184 (4)0.0207 (13)0.492 (5)
H19C0.1271610.5285770.4437140.025*0.492 (5)
H19D0.1383780.5746220.3816330.025*0.492 (5)
C20'0.0923 (11)0.6428 (3)0.4547 (3)0.0136 (12)0.492 (5)
H20C0.0400000.6855990.4281510.016*0.492 (5)
H20D0.2478860.6506530.4685830.016*0.492 (5)
Br11.04489 (4)0.39057 (2)0.85717 (2)0.02363 (7)
O20.1997 (3)0.60868 (11)0.73749 (8)0.0373 (5)
O30.3993 (2)0.61835 (10)0.66054 (7)0.0260 (4)
C210.3598 (3)0.59223 (12)0.71036 (11)0.0194 (5)
C220.5195 (3)0.53769 (12)0.74351 (10)0.0167 (4)
C230.4884 (3)0.51112 (12)0.80118 (10)0.0179 (5)
H230.3594190.5233810.8176740.022*
C240.6430 (3)0.46708 (12)0.8348 (1)0.0194 (5)
H240.6221860.4493480.8743550.023*
C250.8289 (3)0.44938 (12)0.80955 (10)0.0177 (5)
C260.8621 (4)0.47302 (13)0.75203 (10)0.0203 (5)
H260.9894450.4593480.7352400.024*
C270.7050 (4)0.51743 (13)0.71895 (10)0.0198 (5)
H270.7249970.5340800.6790270.024*
Atomic displacement parameters (Å2) top
U11U22U33U12U13U23
N10.0140 (9)0.0254 (11)0.0109 (9)0.0013 (8)0.0013 (7)0.0019 (8)
O10.0117 (7)0.0229 (8)0.0150 (8)0.0010 (6)0.0003 (6)0.0023 (7)
C10.0122 (10)0.0235 (12)0.0118 (10)0.0025 (9)0.0003 (8)0.0001 (9)
C20.0151 (10)0.0199 (11)0.0125 (10)0.0023 (8)0.0023 (8)0.0008 (9)
C30.0206 (11)0.0214 (12)0.0131 (11)0.0044 (9)0.0039 (9)0.0015 (9)
C40.0121 (10)0.0224 (12)0.0166 (11)0.0006 (9)0.0024 (8)0.0020 (9)
C50.0185 (11)0.0355 (14)0.0153 (11)0.0019 (10)0.0050 (9)0.0003 (10)
C60.0314 (14)0.066 (2)0.0111 (12)0.0133 (13)0.0044 (10)0.0086 (12)
C70.0289 (14)0.106 (3)0.0136 (13)0.0268 (16)0.0004 (11)0.0079 (15)
C80.0240 (13)0.066 (2)0.0152 (12)0.0213 (13)0.0032 (10)0.0122 (13)
C90.010 (3)0.016 (3)0.0147 (13)0.005 (2)0.0003 (15)0.0024 (15)
C100.018 (2)0.021 (2)0.015 (3)0.0014 (17)0.007 (2)0.0028 (17)
C110.014 (3)0.031 (2)0.026 (3)0.003 (2)0.002 (2)0.0068 (19)
C120.031 (2)0.018 (2)0.033 (5)0.0048 (18)0.005 (3)0.006 (3)
C130.012 (3)0.027 (2)0.023 (2)0.0010 (19)0.0031 (18)0.0044 (19)
C140.018 (2)0.015 (2)0.009 (2)0.0039 (16)0.0064 (18)0.0009 (16)
C150.0178 (16)0.011 (4)0.0123 (15)0.002 (2)0.0011 (14)0.0014 (13)
C160.017 (2)0.021 (2)0.016 (5)0.0001 (17)0.002 (3)0.002 (3)
C170.0258 (12)0.0229 (19)0.023 (2)0.0011 (13)0.0057 (15)0.0057 (17)
C180.031 (3)0.0148 (14)0.020 (5)0.0005 (15)0.000 (4)0.003 (3)
C190.0196 (12)0.023 (6)0.0208 (17)0.002 (3)0.0011 (12)0.003 (3)
C200.020 (2)0.0185 (13)0.013 (3)0.0013 (13)0.0026 (19)0.0011 (16)
C9'0.0178 (16)0.011 (4)0.0123 (15)0.002 (2)0.0011 (14)0.0014 (13)
C10'0.017 (2)0.021 (2)0.016 (5)0.0001 (17)0.002 (3)0.002 (3)
C11'0.0258 (12)0.0229 (19)0.023 (2)0.0011 (13)0.0057 (15)0.0057 (17)
C12'0.031 (3)0.0148 (14)0.020 (5)0.0005 (15)0.000 (4)0.003 (3)
C13'0.0196 (12)0.023 (6)0.0208 (17)0.002 (3)0.0011 (12)0.003 (3)
C14'0.020 (2)0.0185 (13)0.013 (3)0.0013 (13)0.0026 (19)0.0011 (16)
C15'0.010 (3)0.016 (3)0.0147 (13)0.005 (2)0.0003 (15)0.0024 (15)
C16'0.018 (2)0.021 (2)0.015 (3)0.0014 (17)0.007 (2)0.0028 (17)
C17'0.014 (3)0.031 (2)0.026 (3)0.003 (2)0.002 (2)0.0068 (19)
C18'0.031 (2)0.018 (2)0.033 (5)0.0048 (18)0.005 (3)0.006 (3)
C19'0.012 (3)0.027 (2)0.023 (2)0.0010 (19)0.0031 (18)0.0044 (19)
C20'0.018 (2)0.015 (2)0.009 (2)0.0039 (16)0.0064 (18)0.0009 (16)
Br10.01870 (11)0.02277 (12)0.02920 (13)0.00452 (10)0.00219 (9)0.00522 (11)
O20.0284 (9)0.0486 (12)0.0368 (11)0.0198 (9)0.0115 (8)0.0151 (10)
O30.0226 (8)0.0305 (10)0.0236 (9)0.0012 (7)0.0021 (7)0.0081 (8)
C210.0183 (11)0.0159 (11)0.0225 (12)0.0012 (8)0.0035 (9)0.0023 (9)
C220.0182 (10)0.0134 (10)0.0179 (11)0.0007 (8)0.0003 (9)0.0033 (9)
C230.017 (1)0.0150 (11)0.0227 (12)0.0003 (8)0.0060 (9)0.0023 (9)
C240.0216 (11)0.0171 (11)0.0204 (12)0.0005 (9)0.0056 (9)0.0011 (9)
C250.0179 (10)0.0107 (10)0.0237 (12)0.0019 (8)0.0006 (9)0.0001 (9)
C260.0183 (11)0.0197 (12)0.0237 (12)0.0027 (9)0.0059 (9)0.0017 (10)
C270.0228 (11)0.0203 (12)0.0168 (11)0.0009 (9)0.0044 (9)0.0002 (9)
Geometric parameters (Å, º) top
N1—C31.492 (3)C18—C191.511 (8)
N1—C81.492 (3)C18—H18A0.9900
N1—C41.495 (3)C18—H18B0.9900
N1—H1N0.95 (2)C19—C201.519 (8)
O1—C11.436 (2)C19—H19A0.9900
O1—H1O0.81 (3)C19—H19B0.9900
C1—C9'1.454 (13)C20—H20A0.9900
C1—C91.485 (10)C20—H20B0.9900
C1—C21.546 (3)C9'—C10'1.404 (7)
C1—C15'1.615 (11)C9'—C14'1.408 (7)
C1—C151.628 (13)C10'—C11'1.405 (7)
C2—C31.522 (3)C10'—H10'0.9500
C2—H2A0.9900C11'—C12'1.396 (7)
C2—H2B0.9900C11'—H11'0.9500
C3—H3A0.9900C12'—C13'1.398 (7)
C3—H3B0.9900C12'—H12'0.9500
C4—C51.511 (3)C13'—C14'1.401 (7)
C4—H4A0.9900C13'—H13'0.9500
C4—H4B0.9900C14'—H14'0.9500
C5—C61.522 (3)C15'—C20'1.516 (7)
C5—H5A0.9900C15'—C16'1.525 (8)
C5—H5B0.9900C15'—H15'1.0000
C6—C71.521 (4)C16'—C17'1.525 (7)
C6—H6A0.9900C16'—H16C0.9900
C6—H6B0.9900C16'—H16D0.9900
C7—C81.517 (4)C17'—C18'1.493 (7)
C7—H7A0.9900C17'—H17C0.9900
C7—H7B0.9900C17'—H17D0.9900
C8—H8A0.9900C18'—C19'1.520 (7)
C8—H8B0.9900C18'—H18C0.9900
C9—C101.405 (7)C18'—H18D0.9900
C9—C141.409 (7)C19'—C20'1.512 (7)
C10—C111.414 (6)C19'—H19C0.9900
C10—H100.9500C19'—H19D0.9900
C11—C121.396 (7)C20'—H20C0.9900
C11—H110.9500C20'—H20D0.9900
C12—C131.395 (7)Br1—C251.911 (2)
C12—H120.9500O2—C211.262 (3)
C13—C141.395 (6)O3—C211.244 (3)
C13—H130.9500C21—C221.511 (3)
C14—H140.9500C22—C271.387 (3)
C15—C161.515 (8)C22—C231.390 (3)
C15—C201.520 (8)C23—C241.382 (3)
C15—H151.0000C23—H230.9500
C16—C171.512 (8)C24—C251.385 (3)
C16—H16A0.9900C24—H240.9500
C16—H16B0.9900C25—C261.374 (3)
C17—C181.511 (8)C26—C271.391 (3)
C17—H17A0.9900C26—H260.9500
C17—H17B0.9900C27—H270.9500
C3—N1—C8110.79 (18)H17A—C17—H17B107.9
C3—N1—C4112.51 (16)C19—C18—C17111.3 (7)
C8—N1—C4110.80 (18)C19—C18—H18A109.4
C3—N1—H1N106.7 (15)C17—C18—H18A109.4
C8—N1—H1N108.3 (14)C19—C18—H18B109.4
C4—N1—H1N107.5 (15)C17—C18—H18B109.4
C1—O1—H1O107.7 (18)H18A—C18—H18B108.0
O1—C1—C9'107.6 (6)C18—C19—C20111.1 (7)
O1—C1—C9115.0 (3)C18—C19—H19A109.4
O1—C1—C2108.39 (16)C20—C19—H19A109.4
C9'—C1—C2114.0 (5)C18—C19—H19B109.4
C9—C1—C2110.2 (3)C20—C19—H19B109.4
O1—C1—C15'103.5 (3)H19A—C19—H19B108.0
C9'—C1—C15'112.3 (3)C19—C20—C15111.0 (7)
C2—C1—C15'110.3 (3)C19—C20—H20A109.4
O1—C1—C15102.8 (5)C15—C20—H20A109.4
C9—C1—C15110.7 (3)C19—C20—H20B109.4
C2—C1—C15109.5 (4)C15—C20—H20B109.4
C3—C2—C1110.85 (17)H20A—C20—H20B108.0
C3—C2—H2A109.5C10'—C9'—C14'118.0 (7)
C1—C2—H2A109.5C10'—C9'—C1120.3 (11)
C3—C2—H2B109.5C14'—C9'—C1121.7 (10)
C1—C2—H2B109.5C9'—C10'—C11'121.3 (7)
H2A—C2—H2B108.1C9'—C10'—H10'119.4
N1—C3—C2112.83 (18)C11'—C10'—H10'119.4
N1—C3—H3A109.0C12'—C11'—C10'120.0 (7)
C2—C3—H3A109.0C12'—C11'—H11'120.0
N1—C3—H3B109.0C10'—C11'—H11'120.0
C2—C3—H3B109.0C11'—C12'—C13'119.4 (7)
H3A—C3—H3B107.8C11'—C12'—H12'120.3
N1—C4—C5111.28 (17)C13'—C12'—H12'120.3
N1—C4—H4A109.4C12'—C13'—C14'120.6 (8)
C5—C4—H4A109.4C12'—C13'—H13'119.7
N1—C4—H4B109.4C14'—C13'—H13'119.7
C5—C4—H4B109.4C13'—C14'—C9'120.8 (8)
H4A—C4—H4B108.0C13'—C14'—H14'119.6
C4—C5—C6111.0 (2)C9'—C14'—H14'119.6
C4—C5—H5A109.4C20'—C15'—C16'109.9 (6)
C6—C5—H5A109.4C20'—C15'—C1112.6 (6)
C4—C5—H5B109.4C16'—C15'—C1112.9 (5)
C6—C5—H5B109.4C20'—C15'—H15'107.0
H5A—C5—H5B108.0C16'—C15'—H15'107.0
C7—C6—C5109.3 (2)C1—C15'—H15'107.0
C7—C6—H6A109.8C15'—C16'—C17'110.6 (6)
C5—C6—H6A109.8C15'—C16'—H16C109.5
C7—C6—H6B109.8C17'—C16'—H16C109.5
C5—C6—H6B109.8C15'—C16'—H16D109.5
H6A—C6—H6B108.3C17'—C16'—H16D109.5
C8—C7—C6110.9 (2)H16C—C16'—H16D108.1
C8—C7—H7A109.5C18'—C17'—C16'112.0 (6)
C6—C7—H7A109.5C18'—C17'—H17C109.2
C8—C7—H7B109.5C16'—C17'—H17C109.2
C6—C7—H7B109.5C18'—C17'—H17D109.2
H7A—C7—H7B108.0C16'—C17'—H17D109.2
N1—C8—C7110.8 (2)H17C—C17'—H17D107.9
N1—C8—H8A109.5C17'—C18'—C19'111.8 (6)
C7—C8—H8A109.5C17'—C18'—H18C109.3
N1—C8—H8B109.5C19'—C18'—H18C109.3
C7—C8—H8B109.5C17'—C18'—H18D109.3
H8A—C8—H8B108.1C19'—C18'—H18D109.3
C10—C9—C14117.8 (6)H18C—C18'—H18D107.9
C10—C9—C1117.2 (6)C20'—C19'—C18'111.2 (6)
C14—C9—C1125.0 (5)C20'—C19'—H19C109.4
C9—C10—C11121.2 (5)C18'—C19'—H19C109.4
C9—C10—H10119.4C20'—C19'—H19D109.4
C11—C10—H10119.4C18'—C19'—H19D109.4
C12—C11—C10120.0 (5)H19C—C19'—H19D108.0
C12—C11—H11120.0C19'—C20'—C15'111.0 (5)
C10—C11—H11120.0C19'—C20'—H20C109.4
C13—C12—C11119.1 (6)C15'—C20'—H20C109.4
C13—C12—H12120.4C19'—C20'—H20D109.4
C11—C12—H12120.4C15'—C20'—H20D109.4
C14—C13—C12121.0 (6)H20C—C20'—H20D108.0
C14—C13—H13119.5O3—C21—O2126.0 (2)
C12—C13—H13119.5O3—C21—C22118.2 (2)
C13—C14—C9120.9 (6)O2—C21—C22115.7 (2)
C13—C14—H14119.5C27—C22—C23119.2 (2)
C9—C14—H14119.5C27—C22—C21120.8 (2)
C16—C15—C20109.2 (6)C23—C22—C21119.9 (2)
C16—C15—C1112.1 (8)C24—C23—C22120.8 (2)
C20—C15—C1114.5 (9)C24—C23—H23119.6
C16—C15—H15106.9C22—C23—H23119.6
C20—C15—H15106.9C23—C24—C25118.6 (2)
C1—C15—H15106.9C23—C24—H24120.7
C17—C16—C15111.1 (7)C25—C24—H24120.7
C17—C16—H16A109.4C26—C25—C24122.1 (2)
C15—C16—H16A109.4C26—C25—Br1119.58 (17)
C17—C16—H16B109.4C24—C25—Br1118.28 (17)
C15—C16—H16B109.4C25—C26—C27118.5 (2)
H16A—C16—H16B108.0C25—C26—H26120.8
C18—C17—C16111.7 (7)C27—C26—H26120.8
C18—C17—H17A109.3C22—C27—C26120.8 (2)
C16—C17—H17A109.3C22—C27—H27119.6
C18—C17—H17B109.3C26—C27—H27119.6
C16—C17—H17B109.3
O1—C1—C2—C354.4 (2)C1—C15—C20—C19175.0 (6)
C9'—C1—C2—C365.4 (5)O1—C1—C9'—C10'21.4 (4)
C9—C1—C2—C3179.0 (2)C2—C1—C9'—C10'141.6 (4)
C15'—C1—C2—C3167.1 (3)C15'—C1—C9'—C10'92.0 (5)
C15—C1—C2—C357.0 (5)O1—C1—C9'—C14'158.7 (5)
C8—N1—C3—C2165.40 (19)C2—C1—C9'—C14'38.4 (5)
C4—N1—C3—C270.0 (2)C15'—C1—C9'—C14'88.0 (6)
C1—C2—C3—N1152.27 (17)C14'—C9'—C10'—C11'0.0 (4)
C3—N1—C4—C5178.32 (18)C1—C9'—C10'—C11'180.0 (3)
C8—N1—C4—C557.0 (3)C9'—C10'—C11'—C12'0.3 (6)
N1—C4—C5—C656.8 (3)C10'—C11'—C12'—C13'0.5 (8)
C4—C5—C6—C756.1 (3)C11'—C12'—C13'—C14'0.5 (8)
C5—C6—C7—C856.5 (4)C12'—C13'—C14'—C9'0.3 (8)
C3—N1—C8—C7177.1 (2)C10'—C9'—C14'—C13'0.0 (6)
C4—N1—C8—C757.3 (3)C1—C9'—C14'—C13'179.9 (4)
C6—C7—C8—N157.7 (4)O1—C1—C15'—C20'56.1 (5)
O1—C1—C9—C1023.8 (2)C9'—C1—C15'—C20'59.8 (8)
C2—C1—C9—C10146.6 (2)C2—C1—C15'—C20'171.9 (4)
C15—C1—C9—C1092.1 (6)O1—C1—C15'—C16'178.7 (4)
O1—C1—C9—C14156.4 (3)C9'—C1—C15'—C16'65.4 (8)
C2—C1—C9—C1433.6 (3)C2—C1—C15'—C16'63.0 (6)
C15—C1—C9—C1487.7 (6)C20'—C15'—C16'—C17'56.9 (8)
C14—C9—C10—C110.0 (3)C1—C15'—C16'—C17'176.4 (5)
C1—C9—C10—C11179.7 (2)C15'—C16'—C17'—C18'55.4 (9)
C9—C10—C11—C120.6 (5)C16'—C17'—C18'—C19'53.7 (9)
C10—C11—C12—C130.4 (7)C17'—C18'—C19'—C20'54.1 (9)
C11—C12—C13—C140.4 (7)C18'—C19'—C20'—C15'56.5 (8)
C12—C13—C14—C90.9 (7)C16'—C15'—C20'—C19'58.1 (8)
C10—C9—C14—C130.7 (5)C1—C15'—C20'—C19'175.1 (5)
C1—C9—C14—C13179.5 (3)O3—C21—C22—C270.0 (3)
O1—C1—C15—C1657.2 (6)O2—C21—C22—C27177.9 (2)
C9—C1—C15—C1666.0 (7)O3—C21—C22—C23175.7 (2)
C2—C1—C15—C16172.3 (5)O2—C21—C22—C232.2 (3)
O1—C1—C15—C20177.7 (5)C27—C22—C23—C242.1 (3)
C9—C1—C15—C2059.1 (8)C21—C22—C23—C24173.6 (2)
C2—C1—C15—C2062.6 (6)C22—C23—C24—C250.6 (3)
C20—C15—C16—C1757.9 (9)C23—C24—C25—C261.2 (3)
C1—C15—C16—C17174.1 (7)C23—C24—C25—Br1178.47 (16)
C15—C16—C17—C1856.3 (9)C24—C25—C26—C271.3 (3)
C16—C17—C18—C1953.9 (9)Br1—C25—C26—C27178.31 (17)
C17—C18—C19—C2054.1 (9)C23—C22—C27—C262.0 (3)
C18—C19—C20—C1556.9 (9)C21—C22—C27—C26173.8 (2)
C16—C15—C20—C1958.3 (8)C25—C26—C27—C220.3 (3)
Hydrogen-bond geometry (Å, º) top
D—H···AD—HH···AD···AD—H···A
N1—H1N···O20.95 (2)1.67 (3)2.606 (3)172 (2)
O1—H1O···O30.81 (3)1.94 (3)2.733 (2)167 (3)
C3—H3A···Br1i0.992.853.739 (2)149
C4—H4A···O3ii0.992.393.348 (3)162
Symmetry codes: (i) x+3/2, y+1/2, z+3/2; (ii) x1, y, z.
1-(3-Cyclohexyl-3-hydroxy-3-phenylpropyl)piperidin-1-ium thiophene-2-carboxylate hemihydrate (IV) top
Crystal data top
2C20H32NO+·2C5H3O2S·H2OZ = 2
Mr = 877.21F(000) = 948
Triclinic, P1Dx = 1.226 Mg m3
a = 6.2765 (3) ÅMo Kα radiation, λ = 0.71073 Å
b = 18.5390 (13) ÅCell parameters from 9857 reflections
c = 20.6383 (14) Åθ = 2.2–27.5°
α = 89.710 (2)°µ = 0.16 mm1
β = 81.600 (2)°T = 90 K
γ = 88.977 (2)°Cut block, colourless
V = 2375.3 (3) Å30.16 × 0.12 × 0.11 mm
Data collection top
Bruker D8 Venture dual source
diffractometer
10922 independent reflections
Radiation source: microsource8540 reflections with I > 2σ(I)
Detector resolution: 7.41 pixels mm-1Rint = 0.049
φ and ω scansθmax = 27.5°, θmin = 2.0°
Absorption correction: multi-scan
(SADABS; Krause et al., 2015)
h = 87
Tmin = 0.908, Tmax = 0.959k = 2424
78578 measured reflectionsl = 2626
Refinement top
Refinement on F2Secondary atom site location: difference Fourier map
Least-squares matrix: fullHydrogen site location: mixed
R[F2 > 2σ(F2)] = 0.042H atoms treated by a mixture of independent and constrained refinement
wR(F2) = 0.101 w = 1/[σ2(Fo2) + (0.0315P)2 + 1.4676P]
where P = (Fo2 + 2Fc2)/3
S = 1.03(Δ/σ)max < 0.001
10922 reflectionsΔρmax = 0.71 e Å3
603 parametersΔρmin = 0.30 e Å3
168 restraintsExtinction correction: SHELXL-2019/2 (Sheldrick 2008), Fc*=kFc[1+0.001xFc2λ3/sin(2θ)]-1/4
Primary atom site location: structure-invariant direct methodsExtinction coefficient: 0.0025 (5)
Special details top

Experimental. The crystal was mounted using polyisobutene oil on the tip of a fine glass fibre, which was fastened in a copper mounting pin with electrical solder. It was placed directly into the cold gas stream of a liquid-nitrogen based cryostat (Hope, 1994; Parkin & Hope, 1998).

Diffraction data were collected with the crystal at 90K, which is standard practice in this laboratory for the majority of flash-cooled crystals.

Geometry. All esds (except the esd in the dihedral angle between two l.s. planes) are estimated using the full covariance matrix. The cell esds are taken into account individually in the estimation of esds in distances, angles and torsion angles; correlations between esds in cell parameters are only used when they are defined by crystal symmetry. An approximate (isotropic) treatment of cell esds is used for estimating esds involving l.s. planes.

Refinement. Refinement progress was checked using Platon (Spek, 2020) and by an R-tensor (Parkin, 2000). The final model was further checked with the IUCr utility checkCIF.

Fractional atomic coordinates and isotropic or equivalent isotropic displacement parameters (Å2) top
xyzUiso*/UeqOcc. (<1)
O1A1.01018 (18)0.31684 (6)0.70649 (6)0.0285 (3)
H1OA1.023 (3)0.2634 (12)0.7113 (10)0.043*
N1A0.5203 (2)0.23400 (7)0.63156 (6)0.0206 (3)
H1NA0.453 (3)0.2036 (10)0.6642 (9)0.025*
C1A0.8139 (3)0.34315 (8)0.74407 (8)0.0246 (3)
C2A0.6310 (3)0.29422 (8)0.73028 (8)0.0253 (3)
H2AA0.6757900.2433070.7354860.030*
H2AB0.5029540.3039990.7633550.030*
C3A0.5673 (3)0.30407 (8)0.66211 (8)0.0256 (3)
H3AA0.4380760.3359880.6652220.031*
H3AB0.6856130.3280970.6334700.031*
C4A0.3690 (3)0.24531 (8)0.58264 (8)0.0239 (3)
H4AA0.4336790.2788910.5481230.029*
H4AB0.2331640.2676590.6046150.029*
C5A0.3196 (3)0.17482 (9)0.55142 (8)0.0267 (3)
H5AA0.2259730.1845920.5176020.032*
H5AB0.2406370.1431790.5851650.032*
C6A0.5257 (3)0.13633 (9)0.52014 (8)0.0301 (4)
H6AA0.4904130.0888290.5031530.036*
H6AB0.5965770.1652510.4829100.036*
C7A0.6776 (3)0.12594 (9)0.57060 (8)0.0291 (4)
H7AA0.6119100.0929300.6054680.035*
H7AB0.8141440.1034300.5493900.035*
C8A0.7247 (2)0.19724 (9)0.60084 (8)0.0249 (3)
H8AA0.8196600.1886320.6345140.030*
H8AB0.8011360.2288760.5666110.030*
C9A0.7819 (3)0.42050 (8)0.72132 (8)0.0237 (3)
C10A0.9541 (3)0.45935 (9)0.68973 (8)0.0273 (4)
H10A1.0929210.4371410.6814940.033*
C11A0.9262 (3)0.52997 (9)0.67009 (8)0.0321 (4)
H11A1.0462470.5559520.6490980.038*
C12A0.7251 (3)0.56292 (9)0.68080 (9)0.0326 (4)
H12A0.7061260.6111060.6665360.039*
C13A0.5516 (3)0.52542 (9)0.71237 (9)0.0309 (4)
H13A0.4127440.5477310.7197910.037*
C14A0.5804 (3)0.45499 (9)0.73325 (8)0.0280 (4)
H14A0.4612840.4299380.7559830.034*
C15A0.8340 (3)0.34294 (9)0.81871 (8)0.0266 (3)
H15A0.7057840.3700560.8415800.032*
C16A0.8318 (3)0.26799 (10)0.84952 (9)0.0354 (4)
H16A0.9542280.2389180.8270280.042*
H16B0.6970180.2437150.8433410.042*
C17A0.8478 (4)0.27140 (12)0.92268 (10)0.0500 (6)
H17A0.7188550.2968570.9457390.060*
H17B0.8501620.2217620.9405160.060*
C18A1.0476 (4)0.30993 (11)0.9355 (1)0.0495 (5)
H18A1.1772790.2820550.9161990.059*
H18B1.0487950.3133330.9833020.059*
C19A1.0534 (4)0.38502 (11)0.90591 (10)0.0434 (5)
H19A1.1904340.4080550.9117020.052*
H19B0.9336910.4146740.9291980.052*
C20A1.0334 (3)0.38268 (10)0.83260 (9)0.0333 (4)
H20A1.0275640.4326670.8157600.040*
H20B1.1633680.3585620.8087110.040*
O1B0.62051 (16)0.22169 (6)0.18905 (5)0.0210 (2)
H1OB0.612 (3)0.2411 (10)0.2281 (10)0.032*
N1B0.10474 (19)0.12468 (7)0.30623 (6)0.0181 (3)
H1NB0.047 (3)0.1674 (9)0.3283 (8)0.022*
C1B0.4188 (2)0.23678 (8)0.16663 (7)0.0189 (3)
C2B0.2339 (2)0.21738 (8)0.22165 (7)0.0193 (3)
H2BA0.2164670.2557480.2552920.023*
H2BB0.0973120.2143150.2031950.023*
C3B0.2815 (2)0.14581 (8)0.25303 (8)0.0211 (3)
H3BA0.3010710.1078250.2190300.025*
H3BB0.4177970.1492680.2715430.025*
C4B0.0739 (2)0.08888 (9)0.27877 (8)0.0245 (3)
H4BA0.0155420.0464080.2527010.029*
H4BB0.1361530.1228890.2491860.029*
C5B0.2491 (3)0.06503 (9)0.33256 (9)0.0319 (4)
H5BA0.3592150.0385200.3129130.038*
H5BB0.3199040.1081100.3549480.038*
C6B0.1609 (3)0.01707 (10)0.38237 (10)0.0374 (4)
H6BA0.2776250.0050400.4182240.045*
H6BB0.1029640.0284680.3613130.045*
C7B0.0161 (3)0.05594 (10)0.40982 (9)0.0336 (4)
H7BA0.0449440.0995050.4337330.040*
H7BB0.0775910.0240100.4412050.040*
C8B0.1921 (3)0.07761 (9)0.35551 (8)0.0252 (3)
H8BA0.3045720.1037590.3744170.030*
H8BB0.2596510.0337740.3335910.030*
C9B0.4125 (2)0.18947 (8)0.10659 (7)0.0201 (3)
C10B0.5955 (3)0.15091 (9)0.07854 (8)0.0273 (4)
H10B0.7239350.1530510.0977230.033*
C11B0.5920 (3)0.10937 (10)0.02280 (9)0.0330 (4)
H11B0.7173220.0829110.0045550.040*
C12B0.4076 (3)0.10633 (10)0.00619 (8)0.0321 (4)
H12B0.4066210.0786390.0447460.038*
C13B0.2245 (3)0.14378 (9)0.02120 (8)0.0268 (4)
H13B0.0972270.1417490.0014440.032*
C14B0.2258 (3)0.18437 (9)0.07746 (8)0.0235 (3)
H14B0.0980020.2090340.0964220.028*
C15B0.4105 (2)0.31884 (8)0.15073 (7)0.0204 (3)
H15B0.4399760.3442820.1910120.025*
C16B0.5900 (3)0.34017 (9)0.09634 (8)0.0277 (4)
H16C0.5650230.3179580.0546360.033*
H16D0.7298110.3216230.1068900.033*
C17B0.5992 (3)0.42217 (9)0.08811 (9)0.0321 (4)
H17C0.6386120.4439790.1283170.039*
H17D0.7120940.4343140.0511630.039*
C18B0.3841 (3)0.4536 (1)0.07513 (9)0.0352 (4)
H18C0.3538570.4367550.0320050.042*
H18D0.3917330.5068850.0736010.042*
C19B0.2018 (3)0.43126 (9)0.12812 (9)0.0294 (4)
H19C0.0627880.4493340.1165730.035*
H19D0.2223690.4533270.1703050.035*
C20B0.1949 (2)0.34916 (9)0.13579 (8)0.0247 (3)
H20C0.0795500.3362960.1717690.030*
H20D0.1609380.3273350.0949160.030*
O1C0.38536 (19)0.13539 (7)0.72520 (6)0.0311 (3)
O2C0.05586 (19)0.17101 (6)0.70831 (6)0.0303 (3)
C1C0.1829 (3)0.13457 (8)0.73747 (8)0.0232 (3)
C2C0.0836 (10)0.0857 (2)0.79077 (18)0.0235 (3)0.795 (2)
C3C0.1309 (7)0.0756 (3)0.8116 (3)0.0320 (6)0.795 (2)
H3C0.2424340.1012510.7943360.038*0.795 (2)
C4C0.1696 (6)0.0221 (2)0.86233 (17)0.0270 (6)0.795 (2)
H4C0.3080050.0056220.8806020.032*0.795 (2)
C5C0.0185 (4)0.0016 (2)0.88055 (17)0.0257 (5)0.795 (2)
H5C0.0260380.0345260.9155890.031*0.795 (2)
S1C0.24428 (13)0.03415 (5)0.83360 (4)0.0289 (2)0.795 (2)
C2C'0.092 (4)0.0854 (8)0.7908 (6)0.0235 (3)0.205 (2)
S1C'0.1819 (7)0.0762 (3)0.8081 (3)0.0320 (6)0.205 (2)
C4C'0.134 (3)0.0206 (9)0.8727 (7)0.0270 (6)0.205 (2)
H4C'0.2485310.0047340.9045010.032*0.205 (2)
C5C'0.071 (2)0.0010 (9)0.8759 (7)0.0257 (5)0.205 (2)
H5C'0.1179940.0332740.9054390.031*0.205 (2)
C3C'0.213 (2)0.0421 (10)0.8252 (8)0.0289 (2)0.205 (2)
H3C'0.3653420.0387280.8179090.035*0.205 (2)
O1D0.07797 (17)0.23654 (6)0.37347 (5)0.0263 (3)
O2D0.22275 (18)0.26032 (7)0.41459 (6)0.0305 (3)
C1D0.0291 (2)0.27138 (8)0.41029 (7)0.0210 (3)
C2D0.0919 (3)0.32908 (9)0.45097 (9)0.0194 (3)0.953 (2)
C3D0.2973 (8)0.3526 (4)0.4525 (3)0.0249 (7)0.953 (2)
H3D0.3931710.3324530.4261890.030*0.953 (2)
C4D0.3574 (3)0.40997 (11)0.49666 (11)0.0248 (4)0.953 (2)
H4D0.4960680.4324430.5032240.030*0.953 (2)
C5D0.1924 (3)0.42896 (11)0.52857 (10)0.0274 (4)0.953 (2)
H5D0.2019240.4662750.5602920.033*0.953 (2)
S1D0.03497 (9)0.37763 (3)0.50481 (3)0.02668 (15)0.953 (2)
C2D'0.065 (5)0.3297 (10)0.4521 (11)0.0194 (3)0.047 (2)
S1D'0.327 (5)0.353 (2)0.4487 (19)0.0249 (7)0.047 (2)
C4D'0.315 (6)0.417 (2)0.508 (2)0.0248 (4)0.047 (2)
H4D'0.4338090.4470170.5253190.030*0.047 (2)
C5D'0.118 (6)0.421 (2)0.526 (2)0.0274 (4)0.047 (2)
H5D'0.0804770.4545620.5564020.033*0.047 (2)
C3D'0.027 (6)0.369 (2)0.494 (2)0.02668 (15)0.047 (2)
H3D'0.1728600.3632390.5007620.032*0.047 (2)
O1W0.5732 (3)0.26595 (10)0.31580 (7)0.0497 (4)
H1W10.679 (4)0.2610 (13)0.3359 (12)0.059 (7)*
H2W10.469 (4)0.2601 (14)0.3429 (13)0.063 (8)*
Atomic displacement parameters (Å2) top
U11U22U33U12U13U23
O1A0.0283 (6)0.0233 (6)0.0313 (6)0.0017 (5)0.0045 (5)0.0018 (5)
N1A0.0209 (6)0.0177 (6)0.0221 (7)0.0006 (5)0.0004 (5)0.0043 (5)
C1A0.0255 (8)0.0209 (8)0.0261 (8)0.0008 (6)0.0004 (6)0.0029 (6)
C2A0.0307 (9)0.0189 (8)0.0257 (8)0.0027 (6)0.0018 (7)0.0040 (6)
C3A0.0299 (8)0.0163 (7)0.0307 (9)0.0028 (6)0.0043 (7)0.0032 (6)
C4A0.0229 (8)0.0241 (8)0.0243 (8)0.0020 (6)0.0023 (6)0.0070 (6)
C5A0.0275 (8)0.0311 (9)0.0215 (8)0.0028 (7)0.0039 (6)0.0037 (7)
C6A0.037 (1)0.0282 (9)0.0239 (8)0.0000 (7)0.0000 (7)0.0010 (7)
C7A0.0325 (9)0.0256 (9)0.0274 (9)0.0063 (7)0.0015 (7)0.0002 (7)
C8A0.0200 (8)0.0279 (8)0.0255 (8)0.0031 (6)0.0007 (6)0.0044 (7)
C9A0.0304 (8)0.0190 (8)0.0228 (8)0.0005 (6)0.0071 (6)0.0002 (6)
C10A0.0293 (9)0.0258 (8)0.0274 (8)0.0015 (7)0.0065 (7)0.0002 (7)
C11A0.0437 (10)0.0266 (9)0.0269 (9)0.0098 (8)0.0076 (8)0.0038 (7)
C12A0.0499 (11)0.0197 (8)0.0306 (9)0.0013 (7)0.0142 (8)0.0030 (7)
C13A0.0369 (10)0.0237 (9)0.0337 (9)0.0064 (7)0.0118 (8)0.0022 (7)
C14A0.0306 (9)0.0235 (8)0.0301 (9)0.0022 (7)0.0046 (7)0.0009 (7)
C15A0.0307 (9)0.0247 (8)0.0232 (8)0.0011 (7)0.0006 (7)0.0038 (6)
C16A0.0495 (11)0.0306 (9)0.0255 (9)0.0034 (8)0.0034 (8)0.0048 (7)
C17A0.0773 (16)0.0443 (12)0.0286 (10)0.0043 (11)0.008 (1)0.0103 (9)
C18A0.0757 (16)0.0418 (12)0.0351 (11)0.0015 (11)0.0222 (11)0.0042 (9)
C19A0.0621 (13)0.0368 (11)0.0354 (11)0.0009 (9)0.0211 (10)0.0001 (8)
C20A0.0373 (10)0.0298 (9)0.0343 (10)0.0011 (7)0.0108 (8)0.0044 (7)
O1B0.0169 (5)0.0262 (6)0.0203 (5)0.0011 (4)0.0043 (4)0.0025 (4)
N1B0.0163 (6)0.0170 (6)0.0206 (6)0.0003 (5)0.0013 (5)0.0009 (5)
C1B0.0153 (7)0.0222 (8)0.0194 (7)0.0001 (6)0.0029 (6)0.0010 (6)
C2B0.0181 (7)0.0203 (7)0.0193 (7)0.0000 (6)0.0019 (6)0.0011 (6)
C3B0.0171 (7)0.0217 (8)0.0230 (8)0.0001 (6)0.0022 (6)0.0023 (6)
C4B0.0207 (8)0.0236 (8)0.0296 (9)0.0031 (6)0.0047 (6)0.0039 (7)
C5B0.0203 (8)0.0258 (9)0.0474 (11)0.0043 (7)0.0029 (7)0.0057 (8)
C6B0.0362 (10)0.0265 (9)0.0429 (11)0.0036 (7)0.0167 (8)0.0047 (8)
C7B0.038 (1)0.0311 (9)0.0284 (9)0.0075 (8)0.0051 (8)0.0100 (7)
C8B0.0230 (8)0.0258 (8)0.0262 (8)0.0048 (6)0.0021 (6)0.0061 (7)
C9B0.0214 (7)0.0203 (7)0.0180 (7)0.0038 (6)0.0009 (6)0.0012 (6)
C10B0.0224 (8)0.0339 (9)0.0254 (8)0.0036 (7)0.0017 (6)0.0050 (7)
C11B0.0287 (9)0.0384 (10)0.0304 (9)0.0012 (7)0.0018 (7)0.0112 (8)
C12B0.039 (1)0.0349 (10)0.0220 (8)0.0084 (8)0.0022 (7)0.0063 (7)
C13B0.0307 (9)0.0271 (9)0.0246 (8)0.0078 (7)0.0094 (7)0.0020 (7)
C14B0.0241 (8)0.0229 (8)0.0239 (8)0.0026 (6)0.0044 (6)0.0011 (6)
C15B0.0198 (7)0.0217 (8)0.0201 (7)0.0021 (6)0.0035 (6)0.0001 (6)
C16B0.0242 (8)0.0294 (9)0.0285 (9)0.0031 (7)0.0005 (7)0.0042 (7)
C17B0.0304 (9)0.0309 (9)0.0343 (10)0.0084 (7)0.0017 (7)0.0074 (7)
C18B0.0392 (10)0.0279 (9)0.039 (1)0.0046 (8)0.0071 (8)0.0099 (8)
C19B0.0276 (9)0.0258 (9)0.0354 (9)0.0012 (7)0.0071 (7)0.0039 (7)
C20B0.0230 (8)0.0256 (8)0.0258 (8)0.0018 (6)0.0046 (6)0.0021 (6)
O1C0.0290 (6)0.0341 (7)0.0305 (6)0.0095 (5)0.0043 (5)0.0120 (5)
O2C0.0370 (7)0.0230 (6)0.0301 (6)0.0053 (5)0.0033 (5)0.0039 (5)
C1C0.0312 (8)0.0177 (7)0.0205 (7)0.0035 (6)0.0020 (6)0.0003 (6)
C2C0.0316 (8)0.0195 (7)0.0189 (7)0.0046 (6)0.0018 (5)0.0006 (5)
C3C0.0344 (15)0.0275 (6)0.0326 (8)0.0049 (11)0.0006 (10)0.0001 (5)
C4C0.0274 (13)0.0286 (8)0.0242 (12)0.0052 (8)0.0009 (8)0.0036 (9)
C5C0.0285 (14)0.0274 (9)0.0204 (9)0.0103 (10)0.0005 (9)0.0062 (7)
S1C0.0347 (4)0.0309 (4)0.0241 (4)0.0118 (3)0.0131 (2)0.0109 (2)
C2C'0.0316 (8)0.0195 (7)0.0189 (7)0.0046 (6)0.0018 (5)0.0006 (5)
S1C'0.0344 (15)0.0275 (6)0.0326 (8)0.0049 (11)0.0006 (10)0.0001 (5)
C4C'0.0274 (13)0.0286 (8)0.0242 (12)0.0052 (8)0.0009 (8)0.0036 (9)
C5C'0.0285 (14)0.0274 (9)0.0204 (9)0.0103 (10)0.0005 (9)0.0062 (7)
C3C'0.0347 (4)0.0309 (4)0.0241 (4)0.0118 (3)0.0131 (2)0.0109 (2)
O1D0.0236 (6)0.0275 (6)0.0282 (6)0.0051 (5)0.0051 (5)0.0084 (5)
O2D0.0196 (6)0.0374 (7)0.0347 (7)0.0048 (5)0.0053 (5)0.0029 (5)
C1D0.0210 (7)0.0221 (8)0.0194 (7)0.0005 (6)0.0017 (6)0.0052 (6)
C2D0.0225 (9)0.0177 (7)0.0182 (7)0.0036 (6)0.0029 (6)0.0042 (6)
C3D0.0237 (18)0.0233 (8)0.0274 (12)0.0019 (12)0.0026 (12)0.0010 (7)
C4D0.0273 (10)0.0185 (9)0.0272 (11)0.0013 (7)0.0013 (7)0.0007 (7)
C5D0.0366 (12)0.0192 (9)0.0255 (9)0.0041 (8)0.0016 (9)0.0015 (7)
S1D0.0310 (2)0.0244 (3)0.0271 (3)0.00499 (18)0.01186 (19)0.00035 (18)
C2D'0.0225 (9)0.0177 (7)0.0182 (7)0.0036 (6)0.0029 (6)0.0042 (6)
S1D'0.0237 (18)0.0233 (8)0.0274 (12)0.0019 (12)0.0026 (12)0.0010 (7)
C4D'0.0273 (10)0.0185 (9)0.0272 (11)0.0013 (7)0.0013 (7)0.0007 (7)
C5D'0.0366 (12)0.0192 (9)0.0255 (9)0.0041 (8)0.0016 (9)0.0015 (7)
C3D'0.0310 (2)0.0244 (3)0.0271 (3)0.00499 (18)0.01186 (19)0.00035 (18)
O1W0.0265 (7)0.0958 (13)0.0285 (7)0.0131 (8)0.0105 (6)0.0212 (8)
Geometric parameters (Å, º) top
O1A—C1A1.4356 (19)C6B—H6BA0.9900
O1A—H1OA1.00 (2)C6B—H6BB0.9900
N1A—C4A1.496 (2)C7B—C8B1.513 (2)
N1A—C8A1.4989 (19)C7B—H7BA0.9900
N1A—C3A1.499 (2)C7B—H7BB0.9900
N1A—H1NA0.933 (18)C8B—H8BA0.9900
C1A—C9A1.526 (2)C8B—H8BB0.9900
C1A—C2A1.535 (2)C9B—C10B1.395 (2)
C1A—C15A1.564 (2)C9B—C14B1.398 (2)
C2A—C3A1.527 (2)C10B—C11B1.391 (2)
C2A—H2AA0.9900C10B—H10B0.9500
C2A—H2AB0.9900C11B—C12B1.381 (3)
C3A—H3AA0.9900C11B—H11B0.9500
C3A—H3AB0.9900C12B—C13B1.381 (2)
C4A—C5A1.517 (2)C12B—H12B0.9500
C4A—H4AA0.9900C13B—C14B1.388 (2)
C4A—H4AB0.9900C13B—H13B0.9500
C5A—C6A1.526 (2)C14B—H14B0.9500
C5A—H5AA0.9900C15B—C16B1.526 (2)
C5A—H5AB0.9900C15B—C20B1.528 (2)
C6A—C7A1.520 (2)C15B—H15B1.0000
C6A—H6AA0.9900C16B—C17B1.530 (2)
C6A—H6AB0.9900C16B—H16C0.9900
C7A—C8A1.517 (2)C16B—H16D0.9900
C7A—H7AA0.9900C17B—C18B1.520 (3)
C7A—H7AB0.9900C17B—H17C0.9900
C8A—H8AA0.9900C17B—H17D0.9900
C8A—H8AB0.9900C18B—C19B1.524 (2)
C9A—C10A1.389 (2)C18B—H18C0.9900
C9A—C14A1.396 (2)C18B—H18D0.9900
C10A—C11A1.384 (2)C19B—C20B1.530 (2)
C10A—H10A0.9500C19B—H19C0.9900
C11A—C12A1.381 (3)C19B—H19D0.9900
C11A—H11A0.9500C20B—H20C0.9900
C12A—C13A1.382 (3)C20B—H20D0.9900
C12A—H12A0.9500O1C—C1C1.2596 (19)
C13A—C14A1.390 (2)O2C—C1C1.2533 (19)
C13A—H13A0.9500C1C—C2C'1.482 (12)
C14A—H14A0.9500C1C—C2C1.493 (4)
C15A—C16A1.525 (2)C2C—C3C1.368 (7)
C15A—C20A1.527 (2)C2C—S1C1.712 (6)
C15A—H15A1.0000C3C—C4C1.436 (6)
C16A—C17A1.529 (3)C3C—H3C0.9500
C16A—H16A0.9900C4C—C5C1.356 (3)
C16A—H16B0.9900C4C—H4C0.9500
C17A—C18A1.512 (3)C5C—S1C1.735 (2)
C17A—H17A0.9900C5C—H5C0.9500
C17A—H17B0.9900C2C'—C3C'1.36 (2)
C18A—C19A1.516 (3)C2C'—S1C'1.71 (2)
C18A—H18A0.9900S1C'—C4C'1.738 (13)
C18A—H18B0.9900C4C'—C5C'1.343 (12)
C19A—C20A1.537 (3)C4C'—H4C'0.9500
C19A—H19A0.9900C5C'—C3C'1.485 (15)
C19A—H19B0.9900C5C'—H5C'0.9500
C20A—H20A0.9900C3C'—H3C'0.9500
C20A—H20B0.9900O1D—C1D1.2710 (19)
O1B—C1B1.4327 (17)O2D—C1D1.2451 (18)
O1B—H1OB0.88 (2)C1D—C2D'1.449 (17)
N1B—C8B1.4947 (19)C1D—C2D1.490 (2)
N1B—C4B1.4948 (19)C2D—C3D1.350 (4)
N1B—C3B1.4981 (18)C2D—S1D1.724 (2)
N1B—H1NB0.955 (18)C3D—C4D1.413 (5)
C1B—C9B1.527 (2)C3D—H3D0.9500
C1B—C2B1.546 (2)C4D—C5D1.358 (3)
C1B—C15B1.556 (2)C4D—H4D0.9500
C2B—C3B1.518 (2)C5D—S1D1.713 (2)
C2B—H2BA0.9900C5D—H5D0.9500
C2B—H2BB0.9900C2D'—C3D'1.331 (18)
C3B—H3BA0.9900C2D'—S1D'1.706 (19)
C3B—H3BB0.9900S1D'—C4D'1.715 (19)
C4B—C5B1.514 (2)C4D'—C5D'1.347 (19)
C4B—H4BA0.9900C4D'—H4D'0.9500
C4B—H4BB0.9900C5D'—C3D'1.408 (19)
C5B—C6B1.514 (3)C5D'—H5D'0.9500
C5B—H5BA0.9900C3D'—H3D'0.9500
C5B—H5BB0.9900O1W—H1W10.84 (3)
C6B—C7B1.513 (3)O1W—H2W10.81 (3)
C1A—O1A—H1OA110.2 (12)C4B—C5B—H5BA109.2
C4A—N1A—C8A111.01 (12)C6B—C5B—H5BA109.2
C4A—N1A—C3A110.95 (12)C4B—C5B—H5BB109.2
C8A—N1A—C3A110.75 (12)C6B—C5B—H5BB109.2
C4A—N1A—H1NA107.3 (11)H5BA—C5B—H5BB107.9
C8A—N1A—H1NA107.9 (11)C7B—C6B—C5B109.36 (14)
C3A—N1A—H1NA108.8 (11)C7B—C6B—H6BA109.8
O1A—C1A—C9A106.32 (12)C5B—C6B—H6BA109.8
O1A—C1A—C2A107.92 (13)C7B—C6B—H6BB109.8
C9A—C1A—C2A111.94 (13)C5B—C6B—H6BB109.8
O1A—C1A—C15A110.31 (13)H6BA—C6B—H6BB108.3
C9A—C1A—C15A109.43 (13)C8B—C7B—C6B110.73 (15)
C2A—C1A—C15A110.80 (13)C8B—C7B—H7BA109.5
C3A—C2A—C1A114.04 (13)C6B—C7B—H7BA109.5
C3A—C2A—H2AA108.7C8B—C7B—H7BB109.5
C1A—C2A—H2AA108.7C6B—C7B—H7BB109.5
C3A—C2A—H2AB108.7H7BA—C7B—H7BB108.1
C1A—C2A—H2AB108.7N1B—C8B—C7B111.17 (13)
H2AA—C2A—H2AB107.6N1B—C8B—H8BA109.4
N1A—C3A—C2A112.66 (12)C7B—C8B—H8BA109.4
N1A—C3A—H3AA109.1N1B—C8B—H8BB109.4
C2A—C3A—H3AA109.1C7B—C8B—H8BB109.4
N1A—C3A—H3AB109.1H8BA—C8B—H8BB108.0
C2A—C3A—H3AB109.1C10B—C9B—C14B118.04 (14)
H3AA—C3A—H3AB107.8C10B—C9B—C1B120.56 (14)
N1A—C4A—C5A111.54 (13)C14B—C9B—C1B121.39 (13)
N1A—C4A—H4AA109.3C11B—C10B—C9B120.71 (15)
C5A—C4A—H4AA109.3C11B—C10B—H10B119.6
N1A—C4A—H4AB109.3C9B—C10B—H10B119.6
C5A—C4A—H4AB109.3C12B—C11B—C10B120.42 (16)
H4AA—C4A—H4AB108.0C12B—C11B—H11B119.8
C4A—C5A—C6A111.17 (14)C10B—C11B—H11B119.8
C4A—C5A—H5AA109.4C11B—C12B—C13B119.61 (16)
C6A—C5A—H5AA109.4C11B—C12B—H12B120.2
C4A—C5A—H5AB109.4C13B—C12B—H12B120.2
C6A—C5A—H5AB109.4C12B—C13B—C14B120.28 (15)
H5AA—C5A—H5AB108.0C12B—C13B—H13B119.9
C7A—C6A—C5A109.78 (14)C14B—C13B—H13B119.9
C7A—C6A—H6AA109.7C13B—C14B—C9B120.91 (15)
C5A—C6A—H6AA109.7C13B—C14B—H14B119.5
C7A—C6A—H6AB109.7C9B—C14B—H14B119.5
C5A—C6A—H6AB109.7C16B—C15B—C20B109.72 (13)
H6AA—C6A—H6AB108.2C16B—C15B—C1B111.92 (12)
C8A—C7A—C6A111.29 (14)C20B—C15B—C1B116.31 (12)
C8A—C7A—H7AA109.4C16B—C15B—H15B106.0
C6A—C7A—H7AA109.4C20B—C15B—H15B106.0
C8A—C7A—H7AB109.4C1B—C15B—H15B106.0
C6A—C7A—H7AB109.4C15B—C16B—C17B111.13 (14)
H7AA—C7A—H7AB108.0C15B—C16B—H16C109.4
N1A—C8A—C7A110.79 (13)C17B—C16B—H16C109.4
N1A—C8A—H8AA109.5C15B—C16B—H16D109.4
C7A—C8A—H8AA109.5C17B—C16B—H16D109.4
N1A—C8A—H8AB109.5H16C—C16B—H16D108.0
C7A—C8A—H8AB109.5C18B—C17B—C16B111.32 (14)
H8AA—C8A—H8AB108.1C18B—C17B—H17C109.4
C10A—C9A—C14A118.07 (15)C16B—C17B—H17C109.4
C10A—C9A—C1A120.81 (14)C18B—C17B—H17D109.4
C14A—C9A—C1A121.10 (14)C16B—C17B—H17D109.4
C11A—C10A—C9A120.93 (16)H17C—C17B—H17D108.0
C11A—C10A—H10A119.5C17B—C18B—C19B111.30 (14)
C9A—C10A—H10A119.5C17B—C18B—H18C109.4
C12A—C11A—C10A120.43 (17)C19B—C18B—H18C109.4
C12A—C11A—H11A119.8C17B—C18B—H18D109.4
C10A—C11A—H11A119.8C19B—C18B—H18D109.4
C11A—C12A—C13A119.64 (16)H18C—C18B—H18D108.0
C11A—C12A—H12A120.2C18B—C19B—C20B111.16 (14)
C13A—C12A—H12A120.2C18B—C19B—H19C109.4
C12A—C13A—C14A119.90 (16)C20B—C19B—H19C109.4
C12A—C13A—H13A120.0C18B—C19B—H19D109.4
C14A—C13A—H13A120.0C20B—C19B—H19D109.4
C13A—C14A—C9A120.99 (16)H19C—C19B—H19D108.0
C13A—C14A—H14A119.5C15B—C20B—C19B110.96 (13)
C9A—C14A—H14A119.5C15B—C20B—H20C109.4
C16A—C15A—C20A109.41 (15)C19B—C20B—H20C109.4
C16A—C15A—C1A114.22 (14)C15B—C20B—H20D109.4
C20A—C15A—C1A111.91 (13)C19B—C20B—H20D109.4
C16A—C15A—H15A107.0H20C—C20B—H20D108.0
C20A—C15A—H15A107.0O2C—C1C—O1C125.58 (15)
C1A—C15A—H15A107.0O2C—C1C—C2C'118.5 (9)
C15A—C16A—C17A111.76 (16)O1C—C1C—C2C'115.9 (9)
C15A—C16A—H16A109.3O2C—C1C—C2C116.6 (3)
C17A—C16A—H16A109.3O1C—C1C—C2C117.8 (3)
C15A—C16A—H16B109.3C3C—C2C—C1C127.6 (5)
C17A—C16A—H16B109.3C3C—C2C—S1C112.4 (3)
H16A—C16A—H16B107.9C1C—C2C—S1C120.0 (4)
C18A—C17A—C16A111.81 (18)C2C—C3C—C4C112.9 (5)
C18A—C17A—H17A109.3C2C—C3C—H3C123.6
C16A—C17A—H17A109.3C4C—C3C—H3C123.6
C18A—C17A—H17B109.3C5C—C4C—C3C110.6 (4)
C16A—C17A—H17B109.3C5C—C4C—H4C124.7
H17A—C17A—H17B107.9C3C—C4C—H4C124.7
C17A—C18A—C19A110.40 (18)C4C—C5C—S1C113.4 (3)
C17A—C18A—H18A109.6C4C—C5C—H5C123.3
C19A—C18A—H18A109.6S1C—C5C—H5C123.3
C17A—C18A—H18B109.6C2C—S1C—C5C90.48 (19)
C19A—C18A—H18B109.6C3C'—C2C'—C1C124.0 (16)
H18A—C18A—H18B108.1C3C'—C2C'—S1C'116.2 (10)
C18A—C19A—C20A111.35 (16)C1C—C2C'—S1C'119.6 (14)
C18A—C19A—H19A109.4C2C'—S1C'—C4C'87.0 (8)
C20A—C19A—H19A109.4C5C'—C4C'—S1C'117.5 (12)
C18A—C19A—H19B109.4C5C'—C4C'—H4C'121.3
C20A—C19A—H19B109.4S1C'—C4C'—H4C'121.3
H19A—C19A—H19B108.0C4C'—C5C'—C3C'108.1 (13)
C15A—C20A—C19A112.89 (16)C4C'—C5C'—H5C'125.9
C15A—C20A—H20A109.0C3C'—C5C'—H5C'125.9
C19A—C20A—H20A109.0C2C'—C3C'—C5C'110.3 (13)
C15A—C20A—H20B109.0C2C'—C3C'—H3C'124.9
C19A—C20A—H20B109.0C5C'—C3C'—H3C'124.9
H20A—C20A—H20B107.8O2D—C1D—O1D124.94 (15)
C1B—O1B—H1OB106.6 (12)O2D—C1D—C2D'112.5 (14)
C8B—N1B—C4B111.36 (12)O1D—C1D—C2D'122.5 (14)
C8B—N1B—C3B110.39 (11)O2D—C1D—C2D119.14 (15)
C4B—N1B—C3B111.26 (12)O1D—C1D—C2D115.92 (14)
C8B—N1B—H1NB107.5 (10)C3D—C2D—C1D129.6 (3)
C4B—N1B—H1NB107.8 (10)C3D—C2D—S1D110.5 (2)
C3B—N1B—H1NB108.4 (10)C1D—C2D—S1D119.83 (14)
O1B—C1B—C9B106.73 (12)C2D—C3D—C4D114.2 (3)
O1B—C1B—C2B108.88 (12)C2D—C3D—H3D122.9
C9B—C1B—C2B110.47 (12)C4D—C3D—H3D122.9
O1B—C1B—C15B107.46 (12)C5D—C4D—C3D111.6 (2)
C9B—C1B—C15B112.84 (12)C5D—C4D—H4D124.2
C2B—C1B—C15B110.27 (12)C3D—C4D—H4D124.2
C3B—C2B—C1B110.51 (12)C4D—C5D—S1D111.97 (14)
C3B—C2B—H2BA109.5C4D—C5D—H5D124.0
C1B—C2B—H2BA109.5S1D—C5D—H5D124.0
C3B—C2B—H2BB109.5C5D—S1D—C2D91.72 (9)
C1B—C2B—H2BB109.5C3D'—C2D'—C1D128 (2)
H2BA—C2B—H2BB108.1C3D'—C2D'—S1D'114.0 (15)
N1B—C3B—C2B112.17 (12)C1D—C2D'—S1D'118 (2)
N1B—C3B—H3BA109.2C2D'—S1D'—C4D'89.6 (13)
C2B—C3B—H3BA109.2C5D'—C4D'—S1D'112.4 (18)
N1B—C3B—H3BB109.2C5D'—C4D'—H4D'123.8
C2B—C3B—H3BB109.2S1D'—C4D'—H4D'123.8
H3BA—C3B—H3BB107.9C4D'—C5D'—C3D'113 (2)
N1B—C4B—C5B111.40 (13)C4D'—C5D'—H5D'123.7
N1B—C4B—H4BA109.3C3D'—C5D'—H5D'123.7
C5B—C4B—H4BA109.3C2D'—C3D'—C5D'111.4 (19)
N1B—C4B—H4BB109.3C2D'—C3D'—H3D'124.3
C5B—C4B—H4BB109.3C5D'—C3D'—H3D'124.3
H4BA—C4B—H4BB108.0H1W1—O1W—H2W1105 (2)
C4B—C5B—C6B111.93 (14)
O1A—C1A—C2A—C3A72.04 (17)C9B—C10B—C11B—C12B0.8 (3)
C9A—C1A—C2A—C3A44.62 (18)C10B—C11B—C12B—C13B1.2 (3)
C15A—C1A—C2A—C3A167.08 (13)C11B—C12B—C13B—C14B0.1 (3)
C4A—N1A—C3A—C2A154.13 (13)C12B—C13B—C14B—C9B1.4 (2)
C8A—N1A—C3A—C2A82.12 (16)C10B—C9B—C14B—C13B1.8 (2)
C1A—C2A—C3A—N1A140.13 (14)C1B—C9B—C14B—C13B177.10 (14)
C8A—N1A—C4A—C5A56.52 (16)O1B—C1B—C15B—C16B61.74 (16)
C3A—N1A—C4A—C5A179.88 (12)C9B—C1B—C15B—C16B55.65 (16)
N1A—C4A—C5A—C6A55.86 (17)C2B—C1B—C15B—C16B179.72 (12)
C4A—C5A—C6A—C7A54.99 (18)O1B—C1B—C15B—C20B171.04 (12)
C5A—C6A—C7A—C8A55.89 (18)C9B—C1B—C15B—C20B71.57 (16)
C4A—N1A—C8A—C7A56.93 (16)C2B—C1B—C15B—C20B52.50 (17)
C3A—N1A—C8A—C7A179.36 (13)C20B—C15B—C16B—C17B57.42 (18)
C6A—C7A—C8A—N1A57.21 (17)C1B—C15B—C16B—C17B171.89 (13)
O1A—C1A—C9A—C10A20.6 (2)C15B—C16B—C17B—C18B56.28 (19)
C2A—C1A—C9A—C10A138.19 (15)C16B—C17B—C18B—C19B54.5 (2)
C15A—C1A—C9A—C10A98.57 (17)C17B—C18B—C19B—C20B54.7 (2)
O1A—C1A—C9A—C14A161.28 (15)C16B—C15B—C20B—C19B57.63 (17)
C2A—C1A—C9A—C14A43.7 (2)C1B—C15B—C20B—C19B174.07 (13)
C15A—C1A—C9A—C14A79.58 (19)C18B—C19B—C20B—C15B56.61 (18)
C14A—C9A—C10A—C11A0.6 (2)O2C—C1C—C2C—C3C0.3 (6)
C1A—C9A—C10A—C11A178.83 (15)O1C—C1C—C2C—C3C179.1 (4)
C9A—C10A—C11A—C12A0.9 (3)O2C—C1C—C2C—S1C179.70 (18)
C10A—C11A—C12A—C13A1.1 (3)O1C—C1C—C2C—S1C0.9 (4)
C11A—C12A—C13A—C14A0.1 (3)C1C—C2C—C3C—C4C177.5 (4)
C12A—C13A—C14A—C9A1.7 (3)S1C—C2C—C3C—C4C2.5 (7)
C10A—C9A—C14A—C13A1.9 (2)C2C—C3C—C4C—C5C4.5 (7)
C1A—C9A—C14A—C13A179.88 (15)C3C—C4C—C5C—S1C4.6 (5)
O1A—C1A—C15A—C16A72.32 (18)C3C—C2C—S1C—C5C0.1 (4)
C9A—C1A—C15A—C16A171.04 (14)C1C—C2C—S1C—C5C179.9 (3)
C2A—C1A—C15A—C16A47.13 (19)C4C—C5C—S1C—C2C2.8 (3)
O1A—C1A—C15A—C20A52.69 (18)O2C—C1C—C2C'—C3C'178.7 (11)
C9A—C1A—C15A—C20A63.95 (17)O1C—C1C—C2C'—C3C'0.8 (13)
C2A—C1A—C15A—C20A172.14 (14)O2C—C1C—C2C'—S1C'3.4 (11)
C20A—C15A—C16A—C17A54.7 (2)O1C—C1C—C2C'—S1C'176.1 (6)
C1A—C15A—C16A—C17A178.95 (16)C3C'—C2C'—S1C'—C4C'8.2 (13)
C15A—C16A—C17A—C18A57.3 (2)C1C—C2C'—S1C'—C4C'176.1 (10)
C16A—C17A—C18A—C19A56.3 (2)C2C'—S1C'—C4C'—C5C'9.2 (14)
C17A—C18A—C19A—C20A54.6 (2)S1C'—C4C'—C5C'—C3C'7.6 (18)
C16A—C15A—C20A—C19A54.0 (2)C1C—C2C'—C3C'—C5C'178.8 (12)
C1A—C15A—C20A—C19A178.42 (14)S1C'—C2C'—C3C'—C5C'5.7 (17)
C18A—C19A—C20A—C15A54.8 (2)C4C'—C5C'—C3C'—C2C'1.2 (18)
O1B—C1B—C2B—C3B43.39 (16)O2D—C1D—C2D—C3D176.8 (5)
C9B—C1B—C2B—C3B73.51 (15)O1D—C1D—C2D—C3D3.6 (5)
C15B—C1B—C2B—C3B161.07 (12)O2D—C1D—C2D—S1D1.9 (2)
C8B—N1B—C3B—C2B152.81 (13)O1D—C1D—C2D—S1D177.75 (11)
C4B—N1B—C3B—C2B83.03 (15)C1D—C2D—C3D—C4D178.7 (3)
C1B—C2B—C3B—N1B179.42 (12)S1D—C2D—C3D—C4D0.0 (7)
C8B—N1B—C4B—C5B54.34 (17)C2D—C3D—C4D—C5D0.2 (7)
C3B—N1B—C4B—C5B177.94 (13)C3D—C4D—C5D—S1D0.2 (4)
N1B—C4B—C5B—C6B54.87 (18)C4D—C5D—S1D—C2D0.17 (17)
C4B—C5B—C6B—C7B55.87 (19)C3D—C2D—S1D—C5D0.1 (4)
C5B—C6B—C7B—C8B57.11 (18)C1D—C2D—S1D—C5D178.98 (14)
C4B—N1B—C8B—C7B56.14 (17)O2D—C1D—C2D'—C3D'2 (2)
C3B—N1B—C8B—C7B179.76 (13)O1D—C1D—C2D'—C3D'179 (3)
C6B—C7B—C8B—N1B57.95 (18)O2D—C1D—C2D'—S1D'177.5 (19)
O1B—C1B—C9B—C10B9.16 (19)O1D—C1D—C2D'—S1D'2 (2)
C2B—C1B—C9B—C10B127.39 (15)C3D'—C2D'—S1D'—C4D'2 (3)
C15B—C1B—C9B—C10B108.65 (16)C1D—C2D'—S1D'—C4D'178.9 (19)
O1B—C1B—C9B—C14B171.96 (13)C2D'—S1D'—C4D'—C5D'2 (4)
C2B—C1B—C9B—C14B53.74 (18)S1D'—C4D'—C5D'—C3D'2 (6)
C15B—C1B—C9B—C14B70.22 (18)C1D—C2D'—C3D'—C5D'180 (3)
C14B—C9B—C10B—C11B0.7 (2)S1D'—C2D'—C3D'—C5D'1 (3)
C1B—C9B—C10B—C11B178.20 (15)C4D'—C5D'—C3D'—C2D'1 (5)
Hydrogen-bond geometry (Å, º) top
D—H···AD—HH···AD···AD—H···A
O1A—H1OA···O2Ci1.00 (2)1.72 (2)2.7143 (16)172.3 (18)
N1A—H1NA···O1C0.933 (18)1.793 (18)2.7084 (17)166.4 (16)
N1A—H1NA···O2C0.933 (18)2.606 (18)3.3355 (18)135.4 (14)
C4A—H4AB···O1Aii0.992.513.407 (2)150
C5A—H5AA···O2D0.992.543.358 (2)139
C8A—H8AA···O2Ci0.992.293.283 (2)177
O1B—H1OB···O1W0.88 (2)1.85 (2)2.7186 (18)169.5 (18)
N1B—H1NB···O1D0.955 (18)1.700 (18)2.6497 (17)172.8 (16)
C3B—H3BB···O1W0.992.613.295 (2)126
O1W—H1W1···O1Di0.84 (3)1.86 (3)2.6873 (18)171 (2)
O1W—H2W1···O2D0.81 (3)1.98 (3)2.775 (2)171 (3)
Symmetry codes: (i) x+1, y, z; (ii) x1, y, z.
Conformation-defining torsion angles (°) for trihexyphenylidium cations in I, II, III, IV top
The primed (') atoms in I are III are for the second disorder component.
TorsionIIIIIIIVaIVb
O1—C1—C2—C3-60.52 (14)-60.92 (18)54.5 (2)-72.04 (17)-43.38 (16)
C1—C2—C3—N1152.29 (11)147.37 (15)-152.27 (17)140.13 (14)-179.42 (12)
C2—C3—N1—C459.11 (15)58.13 (19)-70.0 (2)154.13 (13)83.03 (15)
O1—C1—C9—C10-25.1 (5)-13.2 (2)-23.8 (2)-20.6 (2)-9.16 (19)
O1—C1—C15—C1649.4 (7)58.47 (19)57.2 (6)-72.32 (18)61.74 (16)
O1—C1—C9'—C10'17.5 (8)-21.4 (4)--
O1—C1—C15'—C16'168.6 (4)-178.8 (5)--
 

Acknowledgements

One of the authors (V) is grateful to the DST–PURSE Project, Vijnana Bhavana, UOM for providing research facilities. HSY thanks UGC for a BSR Faculty fellowship for three years.

Funding information

Funding for this research was provided by: National Science Foundation, Directorate for Mathematical and Physical Sciences (award No. MRI CHE1625732 to SP).

References

First citationBruker (2016). APEX3. Bruker-AXS Inc., Madison, Wisconsin, USA.  Google Scholar
First citationCamerman, N. & Camerman, A. (1971). Mol. Pharmacol. 7, 406–412.  CAS PubMed Web of Science Google Scholar
First citationCamerman, N. & Camerman, A. (1972). J. Am. Chem. Soc. 94, 8553–8556.  CSD CrossRef CAS PubMed Web of Science Google Scholar
First citationDoshay, L. J., Constable, K. & Zier, A. (1954). J. Am. Med. Assoc. 154, 1334–1336.  CrossRef PubMed CAS Web of Science Google Scholar
First citationGroom, C. R., Bruno, I. J., Lightfoot, M. P. & Ward, S. C. (2016). Acta Cryst. B72, 171–179.  Web of Science CrossRef IUCr Journals Google Scholar
First citationKrause, L., Herbst-Irmer, R., Sheldrick, G. M. & Stalke, D. (2015). J. Appl. Cryst. 48, 3–10.  Web of Science CSD CrossRef ICSD CAS IUCr Journals Google Scholar
First citationMaccaroni, E., Malpezzi, L. & Masciocchi, N. (2010). Acta Cryst. E66, o2511.  Web of Science CSD CrossRef IUCr Journals Google Scholar
First citationMacrae, C. F., Sovago, I., Cottrell, S. J., Galek, P. T. A., McCabe, P., Pidcock, E., Platings, M., Shields, G. P., Stevens, J. S., Towler, M. & Wood, P. A. (2020). J. Appl. Cryst. 53, 226–235.  Web of Science CrossRef CAS IUCr Journals Google Scholar
First citationParkin, S., Glidewell, C. & Horton, P. N. (2023). Acta Cryst. C79, 77–82.  Web of Science CSD CrossRef IUCr Journals Google Scholar
First citationParkin, S. R. (2021). Acta Cryst. E77, 452–465.  Web of Science CrossRef IUCr Journals Google Scholar
First citationRoth, B. L., Craigo, S. C., Choudhary, M. S., Uluer, A., Monsma, F. J., Shen, Y., Meltzer, H. Y. & Sibley, D. R. (1994). J. Pharmacol. Exp. Ther. 268, 1403–1410.  CAS PubMed Web of Science Google Scholar
First citationSeeman, T. & Tallerico, T. (1998). Mol. Psychiatry, 3, 123–134.  Web of Science CrossRef CAS PubMed Google Scholar
First citationSevvana, M., Ruf, M., Usón, I., Sheldrick, G. M. & Herbst-Irmer, R. (2019). Acta Cryst. D75, 1040–1050.  Web of Science CSD CrossRef ICSD IUCr Journals Google Scholar
First citationShaibah, M. A. E., Yathirajan, H. S., Rathore, R. S., Furuya, T., Haraguchi, T., Akitsu, T. & Glidewell, C. (2019). Acta Cryst. E75, 292–298.  Web of Science CSD CrossRef IUCr Journals Google Scholar
First citationSheldrick, G. M. (2008). Acta Cryst. A64, 112–122.  Web of Science CrossRef CAS IUCr Journals Google Scholar
First citationSheldrick, G. M. (2012). TWINABS. University of Göttingen, Germany.  Google Scholar
First citationSheldrick, G. M. (2015a). Acta Cryst. A71, 3–8.  Web of Science CrossRef IUCr Journals Google Scholar
First citationSheldrick, G. M. (2015b). Acta Cryst. C71, 3–8.  Web of Science CrossRef IUCr Journals Google Scholar
First citationSilvestre, J. S. & Prous, J. (2005). Methods Find. Exp. Clin. Pharmacol. 27, 289–304.  Web of Science CrossRef PubMed CAS Google Scholar
First citationTacke, R., Linoh, H., Schomburg, D., Ernst, L., Moser, U., Mutschler, E. & Lambrecht, G. (1986). Liebigs Ann. Chem. pp. 242–250.  CSD CrossRef Google Scholar
First citationVinaya, Basavaraju, Y. B., Srinivasa, G. R., Shreenivas, M. T., Yathirajan, H. S. & Parkin, S. (2023). Acta Cryst. E79, 54–59.  Web of Science CSD CrossRef IUCr Journals Google Scholar
First citationWestrip, S. P. (2010). J. Appl. Cryst. 43, 920–925.  Web of Science CrossRef CAS IUCr Journals Google Scholar

This is an open-access article distributed under the terms of the Creative Commons Attribution (CC-BY) Licence, which permits unrestricted use, distribution, and reproduction in any medium, provided the original authors and source are cited.

Journal logoCRYSTALLOGRAPHIC
COMMUNICATIONS
ISSN: 2056-9890
Follow Acta Cryst. E
Sign up for e-alerts
Follow Acta Cryst. on Twitter
Follow us on facebook
Sign up for RSS feeds