organic compounds\(\def\hfill{\hskip 5em}\def\hfil{\hskip 3em}\def\eqno#1{\hfil {#1}}\)

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Tetra-n-propyl­ammonium acetate–boric acid (1/1)

aCollege of Chemistry, Beijing Normal University, Beijing 100875, People's Republic of China, and bDepartment of Chemistry, University of Malaya, 50603 Kuala Lumpur, Malaysia
*Correspondence e-mail: seikweng@um.edu.my

(Received 20 October 2009; accepted 23 October 2009; online 31 October 2009)

In the crystal structure of the ammonium carboxyl­ate–boric acid cocrystal, (C3H7)4N+·CH3CO2·H3BO3, the boric acid forms two O—H⋯O hydrogen bonds to the acetate anion. The acetate–boric acid species is hydrogen bonded to another acetate–boric acid species through the third OH unit of the boric acid about a twofold rotation axis.

Related literature

For the crystal structure of tetra-n-propyl penta­borate–boric acid co-crystal, see: Freyhardt et al. (1994[Freyhardt, C., Wiebcke, M., Felsche, J. & Engelhardt, G. (1994). J. Inclusion Phenon. Mol. Reg. Chem. 18, 161-175.]).

[Scheme 1]

Experimental

Crystal data
  • C12H28N+·C2H3O2·BH3O3

  • Mr = 307.23

  • Orthorhombic, P c c n

  • a = 16.4594 (3) Å

  • b = 16.7680 (3) Å

  • c = 14.4526 (3) Å

  • V = 3988.79 (13) Å3

  • Z = 8

  • Mo Kα radiation

  • μ = 0.07 mm−1

  • T = 293 K

  • 0.24 × 0.24 × 0.22 mm

Data collection
  • Bruker APEXII diffractometer

  • Absorption correction: none

  • 19907 measured reflections

  • 4581 independent reflections

  • 2803 reflections with I > 2σ(I)

  • Rint = 0.022

Refinement
  • R[F2 > 2σ(F2)] = 0.051

  • wR(F2) = 0.183

  • S = 1.02

  • 4581 reflections

  • 204 parameters

  • 3 restraints

  • H atoms treated by a mixture of independent and constrained refinement

  • Δρmax = 0.23 e Å−3

  • Δρmin = −0.13 e Å−3

Table 1
Hydrogen-bond geometry (Å, °)

D—H⋯A D—H H⋯A DA D—H⋯A
O1—H1⋯O4 0.86 (1) 1.75 (1) 2.600 (2) 175 (2)
O2—H2⋯O5 0.85 (1) 1.79 (1) 2.638 (2) 172 (3)
O3—H3⋯O1i 0.85 (1) 1.88 (1) 2.729 (2) 174 (2)
Symmetry code: (i) [-x+{\script{3\over 2}}, -y+{\script{1\over 2}}, z].

Data collection: APEX2 (Bruker, 2007[Bruker (2007). APEX2 and SAINT. Bruker AXS Inc., Madison, Wisconsin, USA.]); cell refinement: SAINT (Bruker, 2007[Bruker (2007). APEX2 and SAINT. Bruker AXS Inc., Madison, Wisconsin, USA.]); data reduction: SAINT; program(s) used to solve structure: SHELXS97 (Sheldrick, 2008[Sheldrick, G. M. (2008). Acta Cryst. A64, 112-122.]); program(s) used to refine structure: SHELXL97 (Sheldrick, 2008[Sheldrick, G. M. (2008). Acta Cryst. A64, 112-122.]); molecular graphics: X-SEED (Barbour, 2001[Barbour, L. J. (2001). J. Supramol. Chem. 1, 189-191.]); software used to prepare material for publication: publCIF (Westrip, 2009[Westrip, S. P. (2009). publCIF. In preparation.]).

Supporting information


Related literature top

For the crystal structure of tetra-n-propyl pentaborate–boric acid co-crystal, see: Freyhardt et al. (1994).

Experimental top

1,3,5-Tris(4-carboxyphenyl)benzene (0.055 g, 0.125 mmol) and boric acid (0.25 mmol, 0.015 g) were dissolved in a water-ethanol (50/100 v/v) mixture. An aqueous solution of 30% tetra-n-propylammonium hydroxide was added in an acid:base ratio of 1.3. Several drops of acetic acid were added and the clear solution set aside for the formation of crystals after several weeks.

Refinement top

Carbon-bound H-atoms were placed in calculated positions (C—H 0.93–0.97 Å) and were included in the refinement in the riding model approximation, with U(H) set to 1.2–1.5U(C). The hydroxy H-atoms were located in a difference Fourier map and were refined with a distance restraint of 0.85±0.01 Å; their temperature factors were freely refined.

Structure description top

For the crystal structure of tetra-n-propyl pentaborate–boric acid co-crystal, see: Freyhardt et al. (1994).

Computing details top

Data collection: APEX2 (Bruker, 2007); cell refinement: SAINT (Bruker, 2007); data reduction: SAINT (Bruker, 2007); program(s) used to solve structure: SHELXS97 (Sheldrick, 2008); program(s) used to refine structure: SHELXL97 (Sheldrick, 2008); molecular graphics: X-SEED (Barbour, 2001); software used to prepare material for publication: publCIF (Westrip, 2009).

Figures top
[Figure 1] Fig. 1. Thermal ellipsoid plot (Barbour, 2001) of [N(C3H7)4] [CH3CO2].H3BO3 at the 50% probability level; hydrogen atoms are drawn as spheres of arbitrary radius.
Tetra-n-propylammonium acetate–boric acid (1/1) top
Crystal data top
C12H28N+·C2H3O2·BH3O3F(000) = 1360
Mr = 307.23Dx = 1.023 Mg m3
Orthorhombic, PccnMo Kα radiation, λ = 0.71073 Å
Hall symbol: -P 2ab 2acCell parameters from 5166 reflections
a = 16.4594 (3) Åθ = 2.2–25.7°
b = 16.7680 (3) ŵ = 0.07 mm1
c = 14.4526 (3) ÅT = 293 K
V = 3988.79 (13) Å3Block, colorless
Z = 80.24 × 0.24 × 0.22 mm
Data collection top
Bruker APEXII
diffractometer
2803 reflections with I > 2σ(I)
Radiation source: fine-focus sealed tubeRint = 0.022
Graphite monochromatorθmax = 27.5°, θmin = 2.2°
ω and ω scansh = 2021
19907 measured reflectionsk = 2121
4581 independent reflectionsl = 1817
Refinement top
Refinement on F2Secondary atom site location: difference Fourier map
Least-squares matrix: fullHydrogen site location: inferred from neighbouring sites
R[F2 > 2σ(F2)] = 0.051H atoms treated by a mixture of independent and constrained refinement
wR(F2) = 0.183 w = 1/[σ2(Fo2) + (0.0888P)2 + 0.6196P]
where P = (Fo2 + 2Fc2)/3
S = 1.02(Δ/σ)max = 0.001
4581 reflectionsΔρmax = 0.23 e Å3
204 parametersΔρmin = 0.13 e Å3
3 restraintsExtinction correction: SHELXL97 (Sheldrick, 2008), Fc*=kFc[1+0.001xFc2λ3/sin(2θ)]-1/4
Primary atom site location: structure-invariant direct methodsExtinction coefficient: 0.0029 (8)
Crystal data top
C12H28N+·C2H3O2·BH3O3V = 3988.79 (13) Å3
Mr = 307.23Z = 8
Orthorhombic, PccnMo Kα radiation
a = 16.4594 (3) ŵ = 0.07 mm1
b = 16.7680 (3) ÅT = 293 K
c = 14.4526 (3) Å0.24 × 0.24 × 0.22 mm
Data collection top
Bruker APEXII
diffractometer
2803 reflections with I > 2σ(I)
19907 measured reflectionsRint = 0.022
4581 independent reflections
Refinement top
R[F2 > 2σ(F2)] = 0.0513 restraints
wR(F2) = 0.183H atoms treated by a mixture of independent and constrained refinement
S = 1.02Δρmax = 0.23 e Å3
4581 reflectionsΔρmin = 0.13 e Å3
204 parameters
Fractional atomic coordinates and isotropic or equivalent isotropic displacement parameters (Å2) top
xyzUiso*/Ueq
O10.65031 (7)0.26154 (7)0.38659 (8)0.0628 (3)
H10.5997 (7)0.2504 (13)0.3918 (13)0.083 (6)*
O20.60919 (9)0.39766 (8)0.38631 (11)0.0822 (4)
H20.5628 (10)0.3765 (17)0.396 (2)0.131 (11)*
O30.74569 (8)0.36496 (8)0.37814 (10)0.0783 (4)
H30.7800 (12)0.3273 (10)0.3834 (16)0.104 (8)*
O40.49799 (8)0.22127 (8)0.39542 (12)0.0942 (5)
O50.46002 (8)0.34620 (9)0.41629 (12)0.0923 (5)
N10.57206 (9)0.42369 (8)0.68832 (9)0.0628 (4)
C10.48754 (11)0.42868 (11)0.64651 (13)0.0732 (5)
H1A0.47240.48450.64210.088*
H1B0.48980.40760.58400.088*
C20.42181 (13)0.38518 (18)0.69837 (19)0.1086 (8)
H2A0.43540.32900.70240.130*
H2B0.41790.40610.76080.130*
C30.34159 (15)0.39487 (19)0.6499 (2)0.1243 (10)
H3A0.30010.36750.68410.186*
H3B0.34520.37280.58880.186*
H3C0.32830.45050.64590.186*
C40.57384 (13)0.45737 (12)0.78584 (12)0.0750 (5)
H4A0.53870.42500.82450.090*
H4B0.62870.45220.80970.090*
C50.54799 (17)0.54338 (15)0.79533 (16)0.1045 (8)
H5A0.57820.57610.75200.125*
H5B0.49070.54840.78090.125*
C60.5634 (2)0.5719 (2)0.8927 (2)0.1579 (16)
H6A0.54710.62660.89820.237*
H6B0.62030.56720.90660.237*
H6C0.53270.53990.93530.237*
C70.62782 (12)0.46947 (10)0.62404 (12)0.0693 (5)
H7A0.62520.44500.56330.083*
H7B0.60720.52340.61820.083*
C80.71601 (13)0.47402 (14)0.65287 (17)0.0922 (6)
H8A0.72040.50360.71030.111*
H8B0.73670.42060.66350.111*
C90.76609 (17)0.51429 (15)0.5795 (2)0.1162 (9)
H9A0.82160.51730.59950.174*
H9B0.74560.56710.56900.174*
H9C0.76300.48420.52310.174*
C100.59924 (11)0.33770 (10)0.69796 (12)0.0647 (4)
H10A0.65210.33720.72760.078*
H10B0.56160.31060.73900.078*
C110.60502 (16)0.29084 (12)0.61010 (14)0.0875 (7)
H11A0.64410.31580.56910.105*
H11B0.55270.29070.57930.105*
C120.63080 (17)0.20624 (12)0.62980 (17)0.0967 (7)
H12A0.63430.17710.57270.145*
H12B0.59160.18130.66960.145*
H12C0.68290.20640.65960.145*
C130.44575 (11)0.27397 (13)0.40662 (15)0.0781 (5)
C140.35937 (14)0.24694 (18)0.4140 (3)0.1411 (12)
H14A0.33510.26980.46820.212*
H14B0.35770.18980.41830.212*
H14C0.32990.26390.36010.212*
B10.66733 (12)0.34081 (11)0.38298 (13)0.0591 (5)
Atomic displacement parameters (Å2) top
U11U22U33U12U13U23
O10.0555 (7)0.0561 (7)0.0769 (8)0.0019 (5)0.0024 (5)0.0096 (5)
O20.0748 (9)0.0586 (7)0.1131 (12)0.0115 (6)0.0009 (8)0.0088 (7)
O30.0670 (8)0.0588 (7)0.1091 (11)0.0027 (6)0.0061 (7)0.0111 (7)
O40.0616 (8)0.0783 (9)0.1426 (14)0.0003 (6)0.0061 (8)0.0330 (8)
O50.0673 (8)0.0771 (9)0.1325 (13)0.0137 (7)0.0019 (8)0.0022 (8)
N10.0729 (8)0.0629 (8)0.0527 (8)0.0194 (6)0.0066 (6)0.0040 (6)
C10.0755 (12)0.0766 (12)0.0675 (11)0.0210 (9)0.0140 (9)0.0027 (9)
C20.0780 (14)0.137 (2)0.1105 (19)0.0113 (14)0.0109 (13)0.0199 (16)
C30.0839 (16)0.134 (2)0.155 (3)0.0127 (15)0.0238 (16)0.0001 (19)
C40.0852 (12)0.0848 (12)0.0548 (10)0.0224 (10)0.0081 (9)0.0031 (9)
C50.133 (2)0.0994 (16)0.0814 (14)0.0463 (15)0.0204 (13)0.0260 (12)
C60.199 (4)0.165 (3)0.109 (2)0.071 (3)0.046 (2)0.063 (2)
C70.0914 (12)0.0551 (9)0.0613 (10)0.0137 (9)0.0014 (9)0.0079 (7)
C80.0873 (14)0.0955 (15)0.0937 (15)0.0014 (11)0.0033 (11)0.0164 (12)
C90.114 (2)0.1079 (18)0.127 (2)0.0218 (15)0.0101 (16)0.0175 (16)
C100.0757 (11)0.0598 (9)0.0584 (10)0.0148 (8)0.0033 (8)0.0128 (7)
C110.1289 (19)0.0639 (11)0.0698 (12)0.0226 (11)0.0088 (12)0.0032 (9)
C120.1239 (18)0.0607 (11)0.1054 (17)0.0151 (11)0.0040 (14)0.0001 (11)
C130.0555 (10)0.0852 (14)0.0936 (14)0.0044 (9)0.0024 (9)0.0198 (11)
C140.0603 (13)0.125 (2)0.238 (4)0.0056 (14)0.0121 (17)0.054 (2)
B10.0658 (11)0.0570 (10)0.0545 (10)0.0053 (8)0.0001 (8)0.0027 (8)
Geometric parameters (Å, º) top
O1—B11.359 (2)C5—H5B0.9700
O1—H10.856 (9)C6—H6A0.9600
O2—B11.352 (2)C6—H6B0.9600
O2—H20.853 (10)C6—H6C0.9600
O3—B11.354 (2)C7—C81.512 (3)
O3—H30.851 (9)C7—H7A0.9700
O4—C131.244 (2)C7—H7B0.9700
O5—C131.242 (2)C8—C91.503 (3)
N1—C71.515 (2)C8—H8A0.9700
N1—C101.516 (2)C8—H8B0.9700
N1—C41.519 (2)C9—H9A0.9600
N1—C11.519 (2)C9—H9B0.9600
C1—C21.505 (3)C9—H9C0.9600
C1—H1A0.9700C10—C111.496 (3)
C1—H1B0.9700C10—H10A0.9700
C2—C31.503 (3)C10—H10B0.9700
C2—H2A0.9700C11—C121.508 (3)
C2—H2B0.9700C11—H11A0.9700
C3—H3A0.9600C11—H11B0.9700
C3—H3B0.9600C12—H12A0.9600
C3—H3C0.9600C12—H12B0.9600
C4—C51.510 (3)C12—H12C0.9600
C4—H4A0.9700C13—C141.496 (3)
C4—H4B0.9700C14—H14A0.9600
C5—C61.508 (3)C14—H14B0.9600
C5—H5A0.9700C14—H14C0.9600
B1—O1—H1114.6 (15)N1—C7—H7A108.3
B1—O2—H2110 (2)C8—C7—H7B108.3
B1—O3—H3113.9 (16)N1—C7—H7B108.3
C7—N1—C10111.08 (13)H7A—C7—H7B107.4
C7—N1—C4111.66 (15)C9—C8—C7110.8 (2)
C10—N1—C4105.23 (12)C9—C8—H8A109.5
C7—N1—C1106.44 (13)C7—C8—H8A109.5
C10—N1—C1111.05 (14)C9—C8—H8B109.5
C4—N1—C1111.49 (13)C7—C8—H8B109.5
C2—C1—N1115.70 (16)H8A—C8—H8B108.1
C2—C1—H1A108.4C8—C9—H9A109.5
N1—C1—H1A108.4C8—C9—H9B109.5
C2—C1—H1B108.4H9A—C9—H9B109.5
N1—C1—H1B108.4C8—C9—H9C109.5
H1A—C1—H1B107.4H9A—C9—H9C109.5
C3—C2—C1110.3 (2)H9B—C9—H9C109.5
C3—C2—H2A109.6C11—C10—N1116.12 (13)
C1—C2—H2A109.6C11—C10—H10A108.3
C3—C2—H2B109.6N1—C10—H10A108.3
C1—C2—H2B109.6C11—C10—H10B108.3
H2A—C2—H2B108.1N1—C10—H10B108.3
C2—C3—H3A109.5H10A—C10—H10B107.4
C2—C3—H3B109.5C10—C11—C12110.60 (16)
H3A—C3—H3B109.5C10—C11—H11A109.5
C2—C3—H3C109.5C12—C11—H11A109.5
H3A—C3—H3C109.5C10—C11—H11B109.5
H3B—C3—H3C109.5C12—C11—H11B109.5
C5—C4—N1115.72 (15)H11A—C11—H11B108.1
C5—C4—H4A108.4C11—C12—H12A109.5
N1—C4—H4A108.4C11—C12—H12B109.5
C5—C4—H4B108.4H12A—C12—H12B109.5
N1—C4—H4B108.4C11—C12—H12C109.5
H4A—C4—H4B107.4H12A—C12—H12C109.5
C6—C5—C4109.9 (2)H12B—C12—H12C109.5
C6—C5—H5A109.7O5—C13—O4125.24 (18)
C4—C5—H5A109.7O5—C13—C14117.86 (19)
C6—C5—H5B109.7O4—C13—C14116.8 (2)
C4—C5—H5B109.7C13—C14—H14A109.5
H5A—C5—H5B108.2C13—C14—H14B109.5
C5—C6—H6A109.5H14A—C14—H14B109.5
C5—C6—H6B109.5C13—C14—H14C109.5
H6A—C6—H6B109.5H14A—C14—H14C109.5
C5—C6—H6C109.5H14B—C14—H14C109.5
H6A—C6—H6C109.5O2—B1—O3117.74 (16)
H6B—C6—H6C109.5O2—B1—O1122.85 (17)
C8—C7—N1115.99 (15)O3—B1—O1119.39 (15)
C8—C7—H7A108.3
C7—N1—C1—C2178.63 (18)C10—N1—C7—C860.1 (2)
C10—N1—C1—C257.6 (2)C4—N1—C7—C857.0 (2)
C4—N1—C1—C259.4 (2)C1—N1—C7—C8178.90 (16)
N1—C1—C2—C3180.0 (2)N1—C7—C8—C9174.83 (18)
C7—N1—C4—C560.1 (2)C7—N1—C10—C1157.4 (2)
C10—N1—C4—C5179.33 (19)C4—N1—C10—C11178.41 (18)
C1—N1—C4—C558.9 (2)C1—N1—C10—C1160.8 (2)
N1—C4—C5—C6172.4 (2)N1—C10—C11—C12178.76 (18)
Hydrogen-bond geometry (Å, º) top
D—H···AD—HH···AD···AD—H···A
O1—H1···O40.86 (1)1.75 (1)2.600 (2)175 (2)
O2—H2···O50.85 (1)1.79 (1)2.638 (2)172 (3)
O3—H3···O1i0.85 (1)1.88 (1)2.729 (2)174 (2)
Symmetry code: (i) x+3/2, y+1/2, z.

Experimental details

Crystal data
Chemical formulaC12H28N+·C2H3O2·BH3O3
Mr307.23
Crystal system, space groupOrthorhombic, Pccn
Temperature (K)293
a, b, c (Å)16.4594 (3), 16.7680 (3), 14.4526 (3)
V3)3988.79 (13)
Z8
Radiation typeMo Kα
µ (mm1)0.07
Crystal size (mm)0.24 × 0.24 × 0.22
Data collection
DiffractometerBruker APEXII
Absorption correction
No. of measured, independent and
observed [I > 2σ(I)] reflections
19907, 4581, 2803
Rint0.022
(sin θ/λ)max1)0.650
Refinement
R[F2 > 2σ(F2)], wR(F2), S 0.051, 0.183, 1.02
No. of reflections4581
No. of parameters204
No. of restraints3
H-atom treatmentH atoms treated by a mixture of independent and constrained refinement
Δρmax, Δρmin (e Å3)0.23, 0.13

Computer programs: APEX2 (Bruker, 2007), SAINT (Bruker, 2007), SHELXS97 (Sheldrick, 2008), SHELXL97 (Sheldrick, 2008), X-SEED (Barbour, 2001), publCIF (Westrip, 2009).

Hydrogen-bond geometry (Å, º) top
D—H···AD—HH···AD···AD—H···A
O1—H1···O40.86 (1)1.75 (1)2.600 (2)175 (2)
O2—H2···O50.85 (1)1.79 (1)2.638 (2)172 (3)
O3—H3···O1i0.85 (1)1.88 (1)2.729 (2)174 (2)
Symmetry code: (i) x+3/2, y+1/2, z.
 

Acknowledgements

We thank Beijing Normal University and the University of Malaya for supporting this study.

References

First citationBarbour, L. J. (2001). J. Supramol. Chem. 1, 189–191.  CrossRef CAS Google Scholar
First citationBruker (2007). APEX2 and SAINT. Bruker AXS Inc., Madison, Wisconsin, USA.  Google Scholar
First citationFreyhardt, C., Wiebcke, M., Felsche, J. & Engelhardt, G. (1994). J. Inclusion Phenon. Mol. Reg. Chem. 18, 161–175.  CSD CrossRef CAS Web of Science Google Scholar
First citationSheldrick, G. M. (2008). Acta Cryst. A64, 112–122.  Web of Science CrossRef CAS IUCr Journals Google Scholar
First citationWestrip, S. P. (2009). publCIF. In preparation.  Google Scholar

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