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Supporting information
![]() | Crystallographic Information File (CIF) https://doi.org/10.1107/S0108270113016648/yp3041sup1.cif |
![]() | Structure factor file (CIF format) https://doi.org/10.1107/S0108270113016648/yp3041Isup2.hkl |
![]() | Structure factor file (CIF format) https://doi.org/10.1107/S0108270113016648/yp3041IIsup3.hkl |
![]() | Structure factor file (CIF format) https://doi.org/10.1107/S0108270113016648/yp3041IIIsup4.hkl |
CCDC references: 964749; 964750; 964751
All manipulations were performed using a combination of glove-box, high vacuum and Schlenk techniques under a nitrogen or argon atmosphere (McNally et al., 1987; Burger & Bercaw, 1987; Shriver & Drezdzon, 1986). Solvents were purified and degassed by standard procedures. [TpMe,Me]In, (I), was synthesized by the reaction of InCl with [TpMe,Me]K (Trofimenko, 1967) and crystals suitable for X-ray diffraction were obtained from a solution in benzene. [TpBu,Me]In, (II), was synthesized by the reaction of InCl with [TpBu,Me]Tl (Trofimenko et al., 1992) and crystals suitable for X-ray diffraction were obtained from a solution in benzene. [Ga(TpBu,Me)H][GaCl4], (III), was synthesized via the reaction of [TpBu,Me]Tl (Trofimenko et al., 1992) with (HGaCl2)2 and crystals suitable for X-ray diffraction were obtained from a solution in benzene.
Calculations were carried out using density functional theory (DFT) as implemented in the JAGUAR7.6 (release 110) suite of ab initio quantum chemistry programs (Schrödinger, 2009). Geometry optimizations were performed with the B3LYP density functional using the 6–31G** (H, B, C, N, S) and LAV3P (In, Ga) basis set, and NBO calculations were performed with the program NBO (Glendening et al., 2001), as implemented in the JAGUAR suite of programs, using the 6–31G** and LAV3P basis sets.
[TpBu,Me]In resides on a mirror plane and, although the structure can be refined reasonably well neglecting disorder, the displacement parameters associated with the pyrazolyl group on the mirror plane are poorly behaved. The structure was therefore modeled as two components using noncrystallographic symmetry restraints, and they refined to site occupancies of 0.488 and 0.512. In addition, rigid-bond and geometric restraints were used to improve the model.
The H atom on boron in (III) was refined isotropically with Uiso = 1.2UisoB, while that for (I) was restrained to a B—H distance of 1.10 (2)Å, with Uiso = 1.2UisoB and that for (II) was restrained to a B—H distance of 1.07 (2)Å. The H atom on gallium in (III) was refined isotropically with no restraints. All other H atoms were placed in calculated positions, with Uiso(H) = 1.2Uiso(Csp2) or 1.5Uiso(Csp3).
Data collection: SMART (Bruker, 2007) for (I), (III); APEX2 (Bruker, 2007) for (II). Cell refinement: SMART (Bruker, 2007) for (I), (III); SAINT (Bruker, 2007) for (II). For all compounds, 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: SHELXTL (Sheldrick, 2008); software used to prepare material for publication: SHELXTL (Sheldrick, 2008).
Fig. 1. The molecular structure of (I), with the atom-numbering scheme.
[Please provide a revised plot with C atoms labelled as well]
Displacement ellipsoids are drawn at the 30% probability level. C- and
N-bound H atoms have been omitted for clarity. Atoms marked with a prime
(') are at the symmetry position (x, -y + 1/2, z). Fig. 2. The molecular structure of (II), with the atom-numbering scheme. [Please provide a revised plot with C atoms labelled as well] Only one of the disordered components is shown [Which?]. Displacement ellipsoids are drawn at the 30% probability level. C- and N-bound H atoms have been omitted for clarity. Atoms marked with a prime (') are at the symmetry position (-x - 1/2, y, z). Fig. 3. Highest occupied NBOs of geometry-optimized (I) (left) and [TpCF3,CF3]In (right). Fig. 4. The molecular structure of the cation of (III), with the atom-numbering scheme. [Please provide a revised plot with C atoms labelled as well] Displacement ellipsoids are drawn at the 30% probability level. C- and N-bound H atoms have been omitted for clarity. |
[In(C15H22BN6)] | Dx = 1.535 Mg m−3 |
Mr = 412.02 | Mo Kα radiation, λ = 0.71073 Å |
Orthorhombic, Pnma | Cell parameters from 9848 reflections |
a = 17.1939 (7) Å | θ = 2.4–32.2° |
b = 13.3487 (5) Å | µ = 1.33 mm−1 |
c = 7.7658 (3) Å | T = 125 K |
V = 1782.38 (12) Å3 | Block, colourless |
Z = 4 | 0.20 × 0.10 × 0.10 mm |
F(000) = 832 |
Bruker SMART CCD area-detector diffractometer | 2311 independent reflections |
Radiation source: fine-focus sealed tube | 2124 reflections with I > 2σ(I) |
Graphite monochromator | Rint = 0.036 |
ϕ and ω scans | θmax = 28.3°, θmin = 2.4° |
Absorption correction: empirical (using intensity measurements) (SADABS; Bruker, 2007) | h = −22→22 |
Tmin = 0.776, Tmax = 0.878 | k = −17→17 |
23607 measured reflections | l = −10→10 |
Refinement on F2 | Primary atom site location: structure-invariant direct methods |
Least-squares matrix: full | Secondary atom site location: difference Fourier map |
R[F2 > 2σ(F2)] = 0.026 | Hydrogen site location: inferred from neighbouring sites |
wR(F2) = 0.076 | H atoms treated by a mixture of independent and constrained refinement |
S = 1.09 | w = 1/[σ2(Fo2) + (0.0388P)2 + 2.7729P] where P = (Fo2 + 2Fc2)/3 |
2311 reflections | (Δ/σ)max = 0.001 |
120 parameters | Δρmax = 0.86 e Å−3 |
1 restraint | Δρmin = −0.56 e Å−3 |
[In(C15H22BN6)] | V = 1782.38 (12) Å3 |
Mr = 412.02 | Z = 4 |
Orthorhombic, Pnma | Mo Kα radiation |
a = 17.1939 (7) Å | µ = 1.33 mm−1 |
b = 13.3487 (5) Å | T = 125 K |
c = 7.7658 (3) Å | 0.20 × 0.10 × 0.10 mm |
Bruker SMART CCD area-detector diffractometer | 2311 independent reflections |
Absorption correction: empirical (using intensity measurements) (SADABS; Bruker, 2007) | 2124 reflections with I > 2σ(I) |
Tmin = 0.776, Tmax = 0.878 | Rint = 0.036 |
23607 measured reflections |
R[F2 > 2σ(F2)] = 0.026 | 1 restraint |
wR(F2) = 0.076 | H atoms treated by a mixture of independent and constrained refinement |
S = 1.09 | Δρmax = 0.86 e Å−3 |
2311 reflections | Δρmin = −0.56 e Å−3 |
120 parameters |
Geometry. All e.s.d.'s (except the e.s.d. in the dihedral angle between two l.s. planes) are estimated using the full covariance matrix. The cell e.s.d.'s are taken into account individually in the estimation of e.s.d.'s in distances, angles and torsion angles; correlations between e.s.d.'s in cell parameters are only used when they are defined by crystal symmetry. An approximate (isotropic) treatment of cell e.s.d.'s is used for estimating e.s.d.'s involving l.s. planes. |
Refinement. Refinement of F2 against ALL reflections. The weighted R-factor wR and goodness of fit S are based on F2, conventional R-factors R are based on F, with F set to zero for negative F2. The threshold expression of F2 > σ(F2) is used only for calculating R-factors(gt) etc. and is not relevant to the choice of reflections for refinement. R-factors based on F2 are statistically about twice as large as those based on F, and R-factors based on ALL data will be even larger. |
x | y | z | Uiso*/Ueq | Occ. (<1) | |
In1 | 0.183897 (13) | 0.2500 | 0.90716 (3) | 0.01583 (9) | |
B1 | 0.3871 (2) | 0.2500 | 0.9081 (5) | 0.0166 (7) | |
H1 | 0.4515 (11) | 0.2500 | 0.905 (5) | 0.020* | |
N11 | 0.35660 (17) | 0.2500 | 1.0958 (4) | 0.0189 (6) | |
C11 | 0.3966 (2) | 0.2500 | 1.2460 (5) | 0.0233 (7) | |
N12 | 0.27834 (17) | 0.2500 | 1.1292 (4) | 0.0177 (6) | |
C12 | 0.3431 (2) | 0.2500 | 1.3796 (4) | 0.0248 (7) | |
H12A | 0.3538 | 0.2500 | 1.4996 | 0.030* | |
C13 | 0.2699 (2) | 0.2500 | 1.3004 (4) | 0.0201 (7) | |
C14 | 0.4836 (2) | 0.2500 | 1.2550 (6) | 0.0340 (9) | |
H14A | 0.5051 | 0.2500 | 1.1381 | 0.051* | |
H14B | 0.5013 | 0.1901 | 1.3164 | 0.051* | 0.50 |
H14C | 0.5013 | 0.3099 | 1.3164 | 0.051* | 0.50 |
C15 | 0.1912 (2) | 0.2500 | 1.3824 (5) | 0.0273 (8) | |
H15A | 0.1511 | 0.2500 | 1.2926 | 0.041* | |
H15B | 0.1854 | 0.3099 | 1.4541 | 0.041* | 0.50 |
H15C | 0.1854 | 0.1901 | 1.4541 | 0.041* | 0.50 |
N21 | 0.35699 (11) | 0.15535 (15) | 0.8142 (2) | 0.0171 (4) | |
C21 | 0.39666 (14) | 0.07833 (18) | 0.7421 (3) | 0.0210 (5) | |
N22 | 0.27854 (11) | 0.13922 (14) | 0.7947 (2) | 0.0170 (4) | |
C22 | 0.34355 (15) | 0.01168 (18) | 0.6752 (3) | 0.0225 (5) | |
H22A | 0.3545 | −0.0493 | 0.6170 | 0.027* | |
C23 | 0.27008 (14) | 0.05217 (17) | 0.7104 (3) | 0.0192 (4) | |
C24 | 0.48369 (15) | 0.0719 (2) | 0.7427 (4) | 0.0304 (6) | |
H24A | 0.5053 | 0.1310 | 0.8003 | 0.046* | |
H24B | 0.5028 | 0.0692 | 0.6238 | 0.046* | |
H24C | 0.5000 | 0.0114 | 0.8042 | 0.046* | |
C25 | 0.19127 (14) | 0.0111 (2) | 0.6717 (4) | 0.0239 (5) | |
H25A | 0.1515 | 0.0576 | 0.7143 | 0.036* | |
H25B | 0.1851 | −0.0540 | 0.7284 | 0.036* | |
H25C | 0.1854 | 0.0029 | 0.5470 | 0.036* |
U11 | U22 | U33 | U12 | U13 | U23 | |
In1 | 0.01785 (13) | 0.01438 (13) | 0.01524 (13) | 0.000 | −0.00005 (8) | 0.000 |
B1 | 0.0213 (17) | 0.0121 (15) | 0.0165 (16) | 0.000 | −0.0010 (13) | 0.000 |
N11 | 0.0208 (14) | 0.0180 (13) | 0.0179 (13) | 0.000 | −0.0033 (11) | 0.000 |
C11 | 0.0291 (18) | 0.0190 (15) | 0.0218 (17) | 0.000 | −0.0092 (14) | 0.000 |
N12 | 0.0218 (14) | 0.0181 (13) | 0.0132 (13) | 0.000 | −0.0005 (10) | 0.000 |
C12 | 0.036 (2) | 0.0232 (17) | 0.0148 (15) | 0.000 | −0.0076 (14) | 0.000 |
C13 | 0.0278 (17) | 0.0156 (15) | 0.0170 (15) | 0.000 | −0.0020 (13) | 0.000 |
C14 | 0.0265 (19) | 0.044 (2) | 0.031 (2) | 0.000 | −0.0112 (16) | 0.000 |
C15 | 0.035 (2) | 0.029 (2) | 0.0181 (17) | 0.000 | 0.0054 (14) | 0.000 |
N21 | 0.0187 (9) | 0.0152 (9) | 0.0176 (9) | 0.0012 (7) | −0.0005 (7) | −0.0006 (7) |
C21 | 0.0242 (12) | 0.0175 (10) | 0.0213 (11) | 0.0021 (9) | 0.0040 (9) | 0.0013 (9) |
N22 | 0.0196 (9) | 0.0156 (9) | 0.0156 (9) | −0.0004 (7) | −0.0001 (7) | −0.0008 (7) |
C22 | 0.0303 (12) | 0.0149 (10) | 0.0224 (12) | 0.0010 (10) | 0.0046 (10) | −0.0036 (9) |
C23 | 0.0263 (11) | 0.0149 (10) | 0.0166 (10) | 0.0001 (9) | 0.0000 (9) | −0.0005 (8) |
C24 | 0.0248 (12) | 0.0258 (13) | 0.0406 (16) | 0.0052 (10) | 0.0046 (11) | −0.0026 (12) |
C25 | 0.0283 (13) | 0.0175 (11) | 0.0259 (13) | −0.0024 (9) | −0.0017 (10) | −0.0057 (10) |
In1—N22 | 2.3658 (19) | N12—C13 | 1.338 (4) |
In1—N22i | 2.3659 (19) | C12—C13 | 1.400 (5) |
In1—N12 | 2.369 (3) | C13—C15 | 1.496 (5) |
B1—H1 | 1.109 (19) | N21—C21 | 1.355 (3) |
B1—N21i | 1.548 (3) | N21—N22 | 1.374 (3) |
B1—N21 | 1.548 (3) | C21—C22 | 1.377 (3) |
B1—N11 | 1.548 (5) | C21—C24 | 1.499 (4) |
N11—C11 | 1.354 (4) | N22—C23 | 1.342 (3) |
N11—N12 | 1.370 (4) | C22—C23 | 1.401 (3) |
C11—C12 | 1.387 (5) | C23—C25 | 1.492 (3) |
C11—C14 | 1.498 (5) | ||
N22—In1—N22i | 77.37 (9) | C11—C12—C13 | 105.5 (3) |
N22—In1—N12 | 78.30 (7) | N12—C13—C12 | 109.8 (3) |
N22i—In1—N12 | 78.30 (7) | N12—C13—C15 | 121.4 (3) |
H1—B1—N21i | 108.9 (10) | C12—C13—C15 | 128.8 (3) |
H1—B1—N21 | 108.9 (10) | C21—N21—N22 | 109.24 (19) |
N21i—B1—N21 | 109.4 (3) | C21—N21—B1 | 130.2 (2) |
H1—B1—N11 | 111 (2) | N22—N21—B1 | 120.5 (2) |
N21i—B1—N11 | 109.28 (19) | N21—C21—C22 | 108.2 (2) |
N21—B1—N11 | 109.28 (19) | N21—C21—C24 | 123.0 (2) |
C11—N11—N12 | 109.6 (3) | C22—C21—C24 | 128.8 (2) |
C11—N11—B1 | 129.7 (3) | C23—N22—N21 | 107.21 (19) |
N12—N11—B1 | 120.7 (3) | C23—N22—In1 | 130.31 (16) |
N11—C11—C12 | 107.9 (3) | N21—N22—In1 | 122.44 (13) |
N11—C11—C14 | 123.2 (4) | C21—C22—C23 | 106.0 (2) |
C12—C11—C14 | 128.9 (4) | N22—C23—C22 | 109.4 (2) |
C13—N12—N11 | 107.1 (3) | N22—C23—C25 | 121.0 (2) |
C13—N12—In1 | 130.5 (2) | C22—C23—C25 | 129.6 (2) |
N11—N12—In1 | 122.36 (19) |
Symmetry code: (i) x, −y+1/2, z. |
[In(C24H40BN6)] | Dx = 1.306 Mg m−3 |
Mr = 538.25 | Mo Kα radiation, λ = 0.71073 Å |
Orthorhombic, Ama2 | Cell parameters from 9981 reflections |
a = 16.6414 (8) Å | θ = 2.4–30.7° |
b = 15.8504 (7) Å | µ = 0.89 mm−1 |
c = 10.3779 (5) Å | T = 125 K |
V = 2737.4 (2) Å3 | Block, colourless |
Z = 4 | 0.30 × 0.15 × 0.10 mm |
F(000) = 1120 |
Bruker APEXII CCD area-detector diffractometer | 4378 independent reflections |
Radiation source: fine-focus sealed tube | 4151 reflections with I > 2σ(I) |
Graphite monochromator | Rint = 0.028 |
ϕ and ω scans | θmax = 30.7°, θmin = 2.4° |
Absorption correction: empirical (using intensity measurements) (SADABS; Bruker, 2007) | h = −23→23 |
Tmin = 0.777, Tmax = 0.917 | k = −22→22 |
22008 measured reflections | l = −14→14 |
Refinement on F2 | Secondary atom site location: difference Fourier map |
Least-squares matrix: full | Hydrogen site location: inferred from neighbouring sites |
R[F2 > 2σ(F2)] = 0.019 | H atoms treated by a mixture of independent and constrained refinement |
wR(F2) = 0.043 | w = 1/[σ2(Fo2) + (0.0173P)2 + 1.2139P] where P = (Fo2 + 2Fc2)/3 |
S = 1.00 | (Δ/σ)max = 0.004 |
4378 reflections | Δρmax = 0.29 e Å−3 |
295 parameters | Δρmin = −0.25 e Å−3 |
797 restraints | Absolute structure: Flack (1983), with how many Friedel pairs? |
Primary atom site location: structure-invariant direct methods | Absolute structure parameter: −0.051 (15) |
[In(C24H40BN6)] | V = 2737.4 (2) Å3 |
Mr = 538.25 | Z = 4 |
Orthorhombic, Ama2 | Mo Kα radiation |
a = 16.6414 (8) Å | µ = 0.89 mm−1 |
b = 15.8504 (7) Å | T = 125 K |
c = 10.3779 (5) Å | 0.30 × 0.15 × 0.10 mm |
Bruker APEXII CCD area-detector diffractometer | 4378 independent reflections |
Absorption correction: empirical (using intensity measurements) (SADABS; Bruker, 2007) | 4151 reflections with I > 2σ(I) |
Tmin = 0.777, Tmax = 0.917 | Rint = 0.028 |
22008 measured reflections |
R[F2 > 2σ(F2)] = 0.019 | H atoms treated by a mixture of independent and constrained refinement |
wR(F2) = 0.043 | Δρmax = 0.29 e Å−3 |
S = 1.00 | Δρmin = −0.25 e Å−3 |
4378 reflections | Absolute structure: Flack (1983), with how many Friedel pairs? |
295 parameters | Absolute structure parameter: −0.051 (15) |
797 restraints |
Geometry. All e.s.d.'s (except the e.s.d. in the dihedral angle between two l.s. planes) are estimated using the full covariance matrix. The cell e.s.d.'s are taken into account individually in the estimation of e.s.d.'s in distances, angles and torsion angles; correlations between e.s.d.'s in cell parameters are only used when they are defined by crystal symmetry. An approximate (isotropic) treatment of cell e.s.d.'s is used for estimating e.s.d.'s involving l.s. planes. |
Refinement. The structure was modeled by including two components with occupancies of 48.8% and 51.2%. Refinement of F2 against ALL reflections. The weighted R-factor wR and goodness of fit S are based on F2, conventional R-factors R are based on F, with F set to zero for negative F2. The threshold expression of F2 > σ(F2) is used only for calculating R-factors(gt) etc. and is not relevant to the choice of reflections for refinement. R-factors based on F2 are statistically about twice as large as those based on F, and R-factors based on ALL data will be even larger. |
x | y | z | Uiso*/Ueq | Occ. (<1) | |
In1 | −0.2500 | −0.1758 (5) | −0.6586 (5) | 0.0209 (3) | 0.488 (7) |
B1 | −0.2500 | −0.3426 (6) | −0.4384 (14) | 0.0162 (12) | 0.488 (7) |
H1 | −0.2500 | −0.395 (4) | −0.371 (6) | 0.036 (12)* | 0.488 (7) |
N11 | −0.1759 (6) | −0.3514 (5) | −0.5267 (11) | 0.0126 (10) | 0.488 (7) |
N12 | −0.1541 (5) | −0.2881 (6) | −0.6101 (11) | 0.0108 (13) | 0.488 (7) |
C11 | −0.1177 (6) | −0.4114 (5) | −0.5267 (9) | 0.0133 (9) | 0.488 (7) |
C12 | −0.0576 (6) | −0.3911 (6) | −0.6145 (9) | 0.0129 (11) | 0.488 (7) |
H12A | −0.0100 | −0.4213 | −0.6349 | 0.016* | 0.488 (7) |
C13 | −0.0851 (6) | −0.3150 (6) | −0.6647 (9) | 0.0187 (16) | 0.488 (7) |
C14 | −0.0466 (8) | −0.2630 (7) | −0.7719 (11) | 0.024 (2) | 0.488 (7) |
C15 | −0.0991 (15) | −0.2547 (17) | −0.8913 (19) | 0.0303 (15) | 0.488 (7) |
H15A | −0.1466 | −0.2207 | −0.8708 | 0.045* | 0.488 (7) |
H15B | −0.1160 | −0.3109 | −0.9199 | 0.045* | 0.488 (7) |
H15C | −0.0684 | −0.2272 | −0.9602 | 0.045* | 0.488 (7) |
C16 | 0.0322 (10) | −0.3061 (10) | −0.8108 (18) | 0.046 (3) | 0.488 (7) |
H16A | 0.0664 | −0.3127 | −0.7346 | 0.069* | 0.488 (7) |
H16B | 0.0600 | −0.2715 | −0.8750 | 0.069* | 0.488 (7) |
H16C | 0.0205 | −0.3617 | −0.8475 | 0.069* | 0.488 (7) |
C17 | −0.0266 (12) | −0.1738 (8) | −0.7232 (16) | 0.040 (3) | 0.488 (7) |
H17A | −0.0753 | −0.1477 | −0.6879 | 0.060* | 0.488 (7) |
H17B | −0.0064 | −0.1396 | −0.7948 | 0.060* | 0.488 (7) |
H17C | 0.0145 | −0.1773 | −0.6558 | 0.060* | 0.488 (7) |
C18 | −0.1208 (9) | −0.4861 (6) | −0.4388 (10) | 0.0231 (13) | 0.488 (7) |
H18A | −0.1225 | −0.4669 | −0.3491 | 0.035* | 0.488 (7) |
H18B | −0.0729 | −0.5211 | −0.4521 | 0.035* | 0.488 (7) |
H18C | −0.1690 | −0.5194 | −0.4576 | 0.035* | 0.488 (7) |
N21 | −0.2500 | −0.2583 (4) | −0.3660 (7) | 0.0168 (10) | 0.488 (7) |
N22 | −0.2500 | −0.1807 (5) | −0.4277 (7) | 0.0183 (14) | 0.488 (7) |
C21 | −0.2500 | −0.2470 (5) | −0.2367 (7) | 0.0208 (13) | 0.488 (7) |
C22 | −0.2500 | −0.1616 (5) | −0.2142 (7) | 0.0270 (13) | 0.488 (7) |
H22A | −0.2500 | −0.1347 | −0.1323 | 0.032* | 0.488 (7) |
C23 | −0.2500 | −0.1218 (4) | −0.3331 (8) | 0.0239 (15) | 0.488 (7) |
C24 | −0.2500 | −0.0287 (4) | −0.3668 (7) | 0.0288 (14) | 0.488 (7) |
C25 | −0.2500 | 0.0233 (5) | −0.2427 (8) | 0.049 (2) | 0.488 (7) |
H25A | −0.2018 | 0.0100 | −0.1924 | 0.073* | 0.244 (3) |
H25B | −0.2980 | 0.0096 | −0.1920 | 0.073* | 0.244 (3) |
H25C | −0.2503 | 0.0835 | −0.2642 | 0.073* | 0.488 (7) |
C26 | −0.3255 (4) | −0.0055 (4) | −0.4426 (6) | 0.0368 (13) | 0.488 (7) |
H26A | −0.3270 | −0.0378 | −0.5231 | 0.055* | 0.488 (7) |
H26B | −0.3248 | 0.0550 | −0.4624 | 0.055* | 0.488 (7) |
H26C | −0.3732 | −0.0187 | −0.3910 | 0.055* | 0.488 (7) |
C27 | −0.2500 | −0.3189 (5) | −0.1437 (7) | 0.0391 (13) | 0.488 (7) |
H27A | −0.2500 | −0.3723 | −0.1913 | 0.059* | 0.488 (7) |
H27B | −0.2981 | −0.3158 | −0.0894 | 0.059* | 0.244 (3) |
H27C | −0.2019 | −0.3158 | −0.0894 | 0.059* | 0.244 (3) |
In2 | −0.2500 | −0.1749 (4) | −0.6762 (4) | 0.0209 (3) | 0.512 (7) |
B2 | −0.2500 | −0.3242 (6) | −0.4384 (13) | 0.0162 (12) | 0.512 (7) |
H2 | −0.2500 | −0.371 (4) | −0.363 (6) | 0.036 (12)* | 0.512 (7) |
N31 | −0.1716 (6) | −0.3355 (5) | −0.5174 (10) | 0.0126 (10) | 0.512 (7) |
N32 | −0.1539 (6) | −0.2824 (7) | −0.6213 (12) | 0.0226 (19) | 0.512 (7) |
C31 | −0.1154 (6) | −0.3971 (5) | −0.5059 (8) | 0.0133 (9) | 0.512 (7) |
C32 | −0.0598 (6) | −0.3780 (6) | −0.5967 (9) | 0.0198 (16) | 0.512 (7) |
H32A | −0.0120 | −0.4094 | −0.6114 | 0.024* | 0.512 (7) |
C33 | −0.0819 (5) | −0.3062 (6) | −0.6656 (9) | 0.0164 (14) | 0.512 (7) |
C34 | −0.0371 (7) | −0.2584 (7) | −0.7707 (9) | 0.0201 (17) | 0.512 (7) |
C35 | −0.0897 (15) | −0.2539 (16) | −0.8928 (18) | 0.0303 (15) | 0.512 (7) |
H35A | −0.0646 | −0.2161 | −0.9556 | 0.045* | 0.512 (7) |
H35B | −0.1431 | −0.2324 | −0.8701 | 0.045* | 0.512 (7) |
H35C | −0.0949 | −0.3104 | −0.9302 | 0.045* | 0.512 (7) |
C36 | 0.0410 (9) | −0.3027 (8) | −0.8071 (17) | 0.035 (2) | 0.512 (7) |
H36A | 0.0669 | −0.2721 | −0.8780 | 0.052* | 0.512 (7) |
H36B | 0.0294 | −0.3606 | −0.8343 | 0.052* | 0.512 (7) |
H36C | 0.0771 | −0.3037 | −0.7324 | 0.052* | 0.512 (7) |
C37 | −0.0200 (10) | −0.1689 (6) | −0.7231 (15) | 0.027 (2) | 0.512 (7) |
H37A | 0.0159 | −0.1404 | −0.7839 | 0.041* | 0.512 (7) |
H37B | 0.0056 | −0.1714 | −0.6381 | 0.041* | 0.512 (7) |
H37C | −0.0706 | −0.1375 | −0.7167 | 0.041* | 0.512 (7) |
C38 | −0.1225 (9) | −0.4706 (5) | −0.4156 (9) | 0.0231 (13) | 0.512 (7) |
H38A | −0.0729 | −0.5038 | −0.4182 | 0.035* | 0.512 (7) |
H38B | −0.1679 | −0.5061 | −0.4418 | 0.035* | 0.512 (7) |
H38C | −0.1315 | −0.4498 | −0.3278 | 0.035* | 0.512 (7) |
N41 | −0.2500 | −0.2358 (4) | −0.3752 (7) | 0.0168 (10) | 0.512 (7) |
N42 | −0.2500 | −0.1636 (5) | −0.4483 (7) | 0.0225 (15) | 0.512 (7) |
C41 | −0.2500 | −0.2154 (5) | −0.2485 (6) | 0.0221 (13) | 0.512 (7) |
C42 | −0.2500 | −0.1286 (5) | −0.2395 (6) | 0.0253 (12) | 0.512 (7) |
H42A | −0.2500 | −0.0958 | −0.1628 | 0.030* | 0.512 (7) |
C43 | −0.2500 | −0.0986 (4) | −0.3657 (7) | 0.0215 (13) | 0.512 (7) |
C44 | −0.2500 | −0.0084 (4) | −0.4145 (7) | 0.0305 (14) | 0.512 (7) |
C45 | −0.2500 | 0.0520 (4) | −0.3001 (8) | 0.0457 (18) | 0.512 (7) |
H45A | −0.2021 | 0.0420 | −0.2474 | 0.069* | 0.256 (3) |
H45B | −0.2983 | 0.0425 | −0.2480 | 0.069* | 0.256 (3) |
H45C | −0.2497 | 0.1103 | −0.3315 | 0.069* | 0.512 (7) |
C46 | −0.3263 (3) | 0.0086 (4) | −0.4933 (6) | 0.0356 (12) | 0.512 (7) |
H46A | −0.3248 | −0.0247 | −0.5730 | 0.053* | 0.512 (7) |
H46B | −0.3293 | 0.0687 | −0.5147 | 0.053* | 0.512 (7) |
H46C | −0.3736 | −0.0075 | −0.4427 | 0.053* | 0.512 (7) |
C47 | −0.2500 | −0.2795 (5) | −0.1438 (6) | 0.0391 (13) | 0.512 (7) |
H47A | −0.2500 | −0.2510 | −0.0600 | 0.059* | 0.512 (7) |
H47B | −0.2019 | −0.3149 | −0.1512 | 0.059* | 0.256 (3) |
H47C | −0.2981 | −0.3149 | −0.1512 | 0.059* | 0.256 (3) |
U11 | U22 | U33 | U12 | U13 | U23 | |
In1 | 0.02145 (6) | 0.01882 (12) | 0.0224 (9) | 0.000 | 0.000 | 0.0042 (7) |
B1 | 0.0161 (10) | 0.015 (4) | 0.0176 (10) | 0.000 | 0.000 | 0.008 (3) |
N11 | 0.0146 (9) | 0.006 (2) | 0.0168 (13) | −0.0051 (16) | −0.0030 (9) | −0.0014 (18) |
N12 | 0.008 (2) | 0.016 (2) | 0.009 (2) | 0.0039 (19) | −0.0006 (14) | 0.0027 (17) |
C11 | 0.0162 (8) | 0.010 (2) | 0.014 (2) | −0.0027 (14) | −0.0066 (14) | −0.0081 (16) |
C12 | 0.0128 (18) | 0.010 (2) | 0.016 (2) | 0.0033 (16) | 0.0044 (15) | −0.0071 (19) |
C13 | 0.016 (2) | 0.025 (3) | 0.016 (3) | −0.0101 (19) | 0.002 (3) | −0.009 (3) |
C14 | 0.013 (3) | 0.026 (3) | 0.034 (4) | −0.002 (2) | 0.004 (2) | −0.004 (2) |
C15 | 0.023 (4) | 0.0474 (11) | 0.0203 (8) | −0.008 (2) | 0.0022 (18) | 0.0036 (7) |
C16 | 0.024 (4) | 0.075 (6) | 0.039 (5) | −0.002 (3) | 0.015 (3) | 0.018 (4) |
C17 | 0.041 (6) | 0.047 (5) | 0.031 (5) | −0.021 (4) | 0.000 (4) | 0.015 (4) |
C18 | 0.0223 (10) | 0.019 (3) | 0.028 (3) | 0.003 (2) | −0.002 (2) | 0.002 (2) |
N21 | 0.0190 (9) | 0.016 (3) | 0.0157 (12) | 0.000 | 0.000 | 0.0025 (18) |
N22 | 0.019 (2) | 0.018 (3) | 0.018 (2) | 0.000 | 0.000 | −0.005 (2) |
C21 | 0.018 (2) | 0.028 (4) | 0.017 (3) | 0.000 | 0.000 | −0.002 (3) |
C22 | 0.023 (2) | 0.033 (4) | 0.025 (3) | 0.000 | 0.000 | −0.006 (2) |
C23 | 0.018 (2) | 0.019 (3) | 0.035 (4) | 0.000 | 0.000 | −0.006 (2) |
C24 | 0.022 (2) | 0.024 (3) | 0.040 (4) | 0.000 | 0.000 | −0.008 (2) |
C25 | 0.059 (4) | 0.036 (4) | 0.050 (4) | 0.000 | 0.000 | −0.024 (3) |
C26 | 0.040 (2) | 0.018 (2) | 0.052 (4) | 0.0045 (17) | −0.005 (3) | 0.003 (2) |
C27 | 0.0412 (17) | 0.058 (4) | 0.018 (2) | 0.000 | 0.000 | 0.011 (3) |
In2 | 0.02145 (6) | 0.01882 (12) | 0.0224 (9) | 0.000 | 0.000 | 0.0042 (7) |
B2 | 0.0161 (10) | 0.015 (4) | 0.0176 (10) | 0.000 | 0.000 | 0.008 (3) |
N31 | 0.0146 (9) | 0.006 (2) | 0.0168 (13) | −0.0051 (16) | −0.0030 (9) | −0.0014 (18) |
N32 | 0.026 (3) | 0.021 (2) | 0.020 (3) | −0.0080 (19) | 0.001 (2) | 0.0100 (18) |
C31 | 0.0162 (8) | 0.010 (2) | 0.014 (2) | −0.0027 (14) | −0.0066 (14) | −0.0081 (16) |
C32 | 0.018 (2) | 0.017 (3) | 0.025 (3) | 0.0072 (18) | −0.0031 (18) | −0.010 (2) |
C33 | 0.014 (2) | 0.0115 (15) | 0.024 (3) | 0.0012 (16) | −0.008 (3) | 0.002 (3) |
C34 | 0.011 (3) | 0.035 (3) | 0.015 (3) | −0.0120 (19) | −0.0004 (16) | 0.009 (2) |
C35 | 0.023 (4) | 0.0474 (11) | 0.0203 (8) | −0.008 (2) | 0.0022 (18) | 0.0036 (7) |
C36 | 0.016 (3) | 0.037 (3) | 0.051 (6) | 0.007 (2) | 0.013 (2) | 0.006 (3) |
C37 | 0.024 (3) | 0.023 (3) | 0.035 (5) | −0.014 (2) | −0.003 (3) | 0.002 (3) |
C38 | 0.0223 (10) | 0.019 (3) | 0.028 (3) | 0.003 (2) | −0.002 (2) | 0.002 (2) |
N41 | 0.0190 (9) | 0.016 (3) | 0.0157 (12) | 0.000 | 0.000 | 0.0025 (18) |
N42 | 0.028 (3) | 0.015 (3) | 0.024 (3) | 0.000 | 0.000 | 0.001 (2) |
C41 | 0.021 (2) | 0.029 (4) | 0.017 (2) | 0.000 | 0.000 | 0.004 (3) |
C42 | 0.022 (2) | 0.037 (3) | 0.017 (3) | 0.000 | 0.000 | −0.012 (2) |
C43 | 0.017 (2) | 0.025 (3) | 0.023 (3) | 0.000 | 0.000 | −0.005 (2) |
C44 | 0.036 (3) | 0.017 (3) | 0.039 (4) | 0.000 | 0.000 | −0.009 (2) |
C45 | 0.034 (3) | 0.034 (3) | 0.069 (5) | 0.000 | 0.000 | −0.027 (3) |
C46 | 0.033 (2) | 0.024 (2) | 0.050 (3) | 0.0034 (16) | −0.006 (2) | 0.001 (2) |
C47 | 0.0412 (17) | 0.058 (4) | 0.018 (2) | 0.000 | 0.000 | 0.011 (3) |
In1—N22 | 2.397 (7) | In2—N42 | 2.372 (8) |
In1—N12 | 2.443 (7) | In2—N32 | 2.405 (8) |
In1—N12i | 2.443 (7) | In2—N32i | 2.405 (8) |
B1—H1 | 1.08 (2) | B2—H2 | 1.08 (2) |
B1—N21 | 1.533 (9) | B2—N41 | 1.547 (8) |
B1—N11 | 1.543 (9) | B2—N31i | 1.551 (8) |
B1—N11i | 1.543 (9) | B2—N31 | 1.551 (8) |
B1—H1 | 1.08 (2) | B2—H1 | 1.32 (3) |
B1—H2 | 0.90 (4) | B2—H2 | 1.08 (2) |
N11—C11 | 1.358 (9) | N31—C31 | 1.358 (8) |
N11—N12 | 1.374 (9) | N31—N32 | 1.399 (9) |
N12—C13 | 1.349 (8) | N32—C33 | 1.338 (9) |
C11—C12 | 1.391 (9) | C31—C32 | 1.355 (9) |
C11—C18 | 1.495 (9) | C31—C38 | 1.500 (9) |
C12—C13 | 1.391 (9) | C32—C33 | 1.393 (9) |
C12—H12A | 0.9500 | C32—H32A | 0.9500 |
C13—C14 | 1.526 (9) | C33—C34 | 1.522 (8) |
C14—C15 | 1.522 (10) | C34—C36 | 1.525 (9) |
C14—C16 | 1.532 (10) | C34—C37 | 1.530 (9) |
C14—C17 | 1.538 (10) | C34—C35 | 1.542 (9) |
C15—H15A | 0.9800 | C35—H35A | 0.9800 |
C15—H15B | 0.9800 | C35—H35B | 0.9800 |
C15—H15C | 0.9800 | C35—H35C | 0.9800 |
C16—H16A | 0.9800 | C36—H36A | 0.9800 |
C16—H16B | 0.9800 | C36—H36B | 0.9800 |
C16—H16C | 0.9800 | C36—H36C | 0.9800 |
C17—H17A | 0.9800 | C37—H37A | 0.9800 |
C17—H17B | 0.9800 | C37—H37B | 0.9800 |
C17—H17C | 0.9800 | C37—H37C | 0.9800 |
C18—H18A | 0.9800 | C38—H38A | 0.9800 |
C18—H18B | 0.9800 | C38—H38B | 0.9800 |
C18—H18C | 0.9800 | C38—H38C | 0.9800 |
N21—C21 | 1.354 (8) | N41—C41 | 1.354 (8) |
N21—N22 | 1.387 (7) | N41—N42 | 1.374 (7) |
N22—C23 | 1.355 (8) | N42—C43 | 1.340 (8) |
C21—C22 | 1.375 (8) | C41—C42 | 1.380 (9) |
C21—C27 | 1.493 (8) | C41—C47 | 1.488 (8) |
C22—C23 | 1.386 (9) | C42—C43 | 1.394 (8) |
C22—H22A | 0.9500 | C42—H42A | 0.9500 |
C23—C24 | 1.516 (9) | C43—C44 | 1.516 (8) |
C24—C26i | 1.528 (7) | C44—C45 | 1.525 (8) |
C24—C26 | 1.528 (7) | C44—C46 | 1.535 (6) |
C24—C25 | 1.529 (8) | C44—C46i | 1.535 (6) |
C25—H25A | 0.9800 | C45—H45A | 0.9800 |
C25—H25B | 0.9800 | C45—H45B | 0.9800 |
C25—H25C | 0.9800 | C45—H45C | 0.9800 |
C26—H26A | 0.9800 | C46—H46A | 0.9800 |
C26—H26B | 0.9800 | C46—H46B | 0.9800 |
C26—H26C | 0.9800 | C46—H46C | 0.9800 |
C27—H27A | 0.9800 | C47—H47A | 0.9800 |
C27—H27B | 0.9800 | C47—H47B | 0.9800 |
C27—H27C | 0.9800 | C47—H47C | 0.9800 |
N22—In1—N12 | 76.7 (3) | N31—B2—H1 | 100.5 (19) |
N22—In1—N12i | 76.7 (3) | H2—B2—H2 | 0 (3) |
N12—In1—N12i | 81.6 (6) | N41—B2—H2 | 109 (4) |
H1—B1—N21 | 110 (5) | N31i—B2—H2 | 108 (2) |
H1—B1—N11 | 108 (2) | N31—B2—H2 | 108 (2) |
N21—B1—N11 | 111.7 (6) | H1—B2—H2 | 14 (7) |
H1—B1—N11i | 108 (2) | C31—N31—N32 | 110.8 (7) |
N21—B1—N11i | 111.7 (6) | C31—N31—B2 | 128.0 (7) |
N11—B1—N11i | 106.2 (12) | N32—N31—B2 | 121.1 (8) |
H1—B1—H1 | 0 (3) | C33—N32—N31 | 106.5 (7) |
N21—B1—H1 | 110 (5) | C33—N32—In2 | 135.5 (6) |
N11—B1—H1 | 108 (2) | N31—N32—In2 | 117.9 (6) |
N11i—B1—H1 | 108 (2) | C32—C31—N31 | 104.4 (7) |
H1—B1—H2 | 20 (8) | C32—C31—C38 | 131.5 (8) |
N21—B1—H2 | 91 (5) | N31—C31—C38 | 124.0 (8) |
N11—B1—H2 | 118 (2) | C31—C32—C33 | 111.0 (7) |
N11i—B1—H2 | 118 (2) | C31—C32—H32A | 124.5 |
H1—B1—H2 | 20 (8) | C33—C32—H32A | 124.5 |
C11—N11—N12 | 108.9 (7) | N32—C33—C32 | 106.9 (7) |
C11—N11—B1 | 129.3 (8) | N32—C33—C34 | 123.0 (7) |
N12—N11—B1 | 121.3 (7) | C32—C33—C34 | 130.1 (7) |
C13—N12—N11 | 105.0 (7) | C33—C34—C36 | 111.5 (8) |
C13—N12—In1 | 134.4 (7) | C33—C34—C37 | 108.7 (9) |
N11—N12—In1 | 119.3 (5) | C36—C34—C37 | 110.4 (9) |
N11—C11—C12 | 110.5 (7) | C33—C34—C35 | 109.5 (11) |
N11—C11—C18 | 122.0 (8) | C36—C34—C35 | 107.6 (10) |
C12—C11—C18 | 127.5 (8) | C37—C34—C35 | 109.1 (10) |
C11—C12—C13 | 102.1 (7) | C34—C35—H35A | 109.5 |
C11—C12—H12A | 128.9 | C34—C35—H35B | 109.5 |
C13—C12—H12A | 128.9 | H35A—C35—H35B | 109.5 |
N12—C13—C12 | 113.4 (7) | C34—C35—H35C | 109.5 |
N12—C13—C14 | 119.5 (8) | H35A—C35—H35C | 109.5 |
C12—C13—C14 | 127.1 (7) | H35B—C35—H35C | 109.5 |
C15—C14—C13 | 113.5 (12) | C34—C36—H36A | 109.5 |
C15—C14—C16 | 108.4 (11) | C34—C36—H36B | 109.5 |
C13—C14—C16 | 108.1 (9) | H36A—C36—H36B | 109.5 |
C15—C14—C17 | 108.2 (11) | C34—C36—H36C | 109.5 |
C13—C14—C17 | 110.3 (9) | H36A—C36—H36C | 109.5 |
C16—C14—C17 | 108.2 (11) | H36B—C36—H36C | 109.5 |
C14—C16—H16A | 109.5 | C34—C37—H37A | 109.5 |
C14—C16—H16B | 109.5 | C34—C37—H37B | 109.5 |
H16A—C16—H16B | 109.5 | H37A—C37—H37B | 109.5 |
C14—C16—H16C | 109.5 | C34—C37—H37C | 109.5 |
H16A—C16—H16C | 109.5 | H37A—C37—H37C | 109.5 |
H16B—C16—H16C | 109.5 | H37B—C37—H37C | 109.5 |
C21—N21—N22 | 109.9 (6) | C31—C38—H38A | 109.5 |
C21—N21—B1 | 126.9 (7) | C31—C38—H38B | 109.5 |
N22—N21—B1 | 123.2 (7) | H38A—C38—H38B | 109.5 |
C23—N22—N21 | 106.1 (6) | C31—C38—H38C | 109.5 |
C23—N22—In1 | 134.6 (6) | H38A—C38—H38C | 109.5 |
N21—N22—In1 | 119.4 (5) | H38B—C38—H38C | 109.5 |
N21—C21—C22 | 107.4 (6) | C41—N41—N42 | 109.7 (5) |
N21—C21—C27 | 122.7 (6) | C41—N41—B2 | 128.9 (7) |
C22—C21—C27 | 130.0 (6) | N42—N41—B2 | 121.4 (7) |
C21—C22—C23 | 107.3 (6) | C43—N42—N41 | 106.7 (6) |
C21—C22—H22A | 126.4 | C43—N42—In2 | 134.1 (5) |
C23—C22—H22A | 126.4 | N41—N42—In2 | 119.2 (5) |
N22—C23—C22 | 109.4 (6) | N41—C41—C42 | 107.7 (5) |
N22—C23—C24 | 120.2 (7) | N41—C41—C47 | 123.1 (6) |
C22—C23—C24 | 130.4 (6) | C42—C41—C47 | 129.2 (6) |
C23—C24—C26i | 110.7 (4) | C41—C42—C43 | 106.0 (5) |
C23—C24—C26 | 110.7 (4) | C41—C42—H42A | 127.0 |
C26i—C24—C26 | 110.7 (7) | C43—C42—H42A | 127.0 |
C23—C24—C25 | 109.3 (6) | N42—C43—C42 | 109.8 (6) |
C26i—C24—C25 | 107.7 (4) | N42—C43—C44 | 120.7 (6) |
C26—C24—C25 | 107.7 (4) | C42—C43—C44 | 129.4 (6) |
C24—C25—H25A | 109.5 | C43—C44—C45 | 109.4 (6) |
C24—C25—H25B | 109.5 | C43—C44—C46 | 110.1 (3) |
H25A—C25—H25B | 109.5 | C45—C44—C46 | 107.8 (4) |
C24—C25—H25C | 109.5 | C43—C44—C46i | 110.1 (3) |
H25A—C25—H25C | 109.5 | C45—C44—C46i | 107.8 (4) |
H25B—C25—H25C | 109.5 | C46—C44—C46i | 111.7 (6) |
C21—C27—H27A | 109.5 | C44—C45—H45A | 109.5 |
C21—C27—H27B | 109.5 | C44—C45—H45B | 109.5 |
H27A—C27—H27B | 109.5 | H45A—C45—H45B | 109.5 |
C21—C27—H27C | 109.5 | C44—C45—H45C | 109.5 |
H27A—C27—H27C | 109.5 | H45A—C45—H45C | 109.5 |
H27B—C27—H27C | 109.5 | H45B—C45—H45C | 109.5 |
N42—In2—N32 | 79.5 (3) | C44—C46—H46A | 109.5 |
N42—In2—N32i | 79.5 (3) | C44—C46—H46B | 109.5 |
N32—In2—N32i | 83.3 (6) | H46A—C46—H46B | 109.5 |
H2—B2—N41 | 109 (4) | C44—C46—H46C | 109.5 |
H2—B2—N31i | 108 (2) | H46A—C46—H46C | 109.5 |
N41—B2—N31i | 109.2 (5) | H46B—C46—H46C | 109.5 |
H2—B2—N31 | 108 (2) | C41—C47—H47A | 109.5 |
N41—B2—N31 | 109.2 (5) | C41—C47—H47B | 109.5 |
N31i—B2—N31 | 114.5 (11) | H47A—C47—H47B | 109.5 |
H2—B2—H1 | 14 (7) | C41—C47—H47C | 109.5 |
N41—B2—H1 | 123 (4) | H47A—C47—H47C | 109.5 |
N31i—B2—H1 | 100.5 (19) | H47B—C47—H47C | 109.5 |
H1—B1—N11—C11 | 0 (4) | H2—B2—N31—C31 | 6 (4) |
N21—B1—N11—C11 | 121.6 (11) | N41—B2—N31—C31 | 123.6 (10) |
N11i—B1—N11—C11 | −116.4 (11) | N31i—B2—N31—C31 | −113.7 (11) |
H1—B1—N11—N12 | −171 (4) | H2—B2—N31—N32 | −179 (4) |
N21—B1—N11—N12 | −49.1 (15) | N41—B2—N31—N32 | −61.5 (13) |
N11i—B1—N11—N12 | 72.8 (13) | N31i—B2—N31—N32 | 61.2 (13) |
C11—N11—N12—C13 | 3.9 (13) | C31—N31—N32—C33 | −6.5 (14) |
B1—N11—N12—C13 | 176.4 (10) | B2—N31—N32—C33 | 177.8 (9) |
C11—N11—N12—In1 | 172.6 (7) | C31—N31—N32—In2 | 174.6 (7) |
B1—N11—N12—In1 | −15.0 (15) | B2—N31—N32—In2 | −1.1 (15) |
N22—In1—N12—C13 | −145.1 (13) | N42—In2—N32—C33 | −135.8 (15) |
N12i—In1—N12—C13 | 136.7 (11) | N32i—In2—N32—C33 | 143.7 (12) |
N22—In1—N12—N11 | 50.4 (9) | N42—In2—N32—N31 | 42.8 (10) |
N12i—In1—N12—N11 | −27.9 (12) | N32i—In2—N32—N31 | −37.7 (13) |
N12—N11—C11—C12 | −2.6 (12) | N32—N31—C31—C32 | 4.6 (11) |
B1—N11—C11—C12 | −174.3 (10) | B2—N31—C31—C32 | 180.0 (9) |
N12—N11—C11—C18 | 175.8 (10) | N32—N31—C31—C38 | −171.6 (10) |
B1—N11—C11—C18 | 4.1 (15) | B2—N31—C31—C38 | 3.7 (14) |
N11—C11—C12—C13 | 0.2 (8) | N31—C31—C32—C33 | −1.1 (7) |
C18—C11—C12—C13 | −178.1 (9) | C38—C31—C32—C33 | 174.7 (9) |
N11—N12—C13—C12 | −4.0 (13) | N31—N32—C33—C32 | 5.4 (13) |
In1—N12—C13—C12 | −170.1 (9) | In2—N32—C33—C32 | −175.9 (11) |
N11—N12—C13—C14 | 175.1 (10) | N31—N32—C33—C34 | −173.9 (10) |
In1—N12—C13—C14 | 9.0 (17) | In2—N32—C33—C34 | 5 (2) |
C11—C12—C13—N12 | 2.4 (9) | C31—C32—C33—N32 | −2.8 (9) |
C11—C12—C13—C14 | −176.6 (10) | C31—C32—C33—C34 | 176.4 (10) |
N12—C13—C14—C15 | −62.4 (16) | N32—C33—C34—C36 | −176.7 (13) |
C12—C13—C14—C15 | 116.6 (13) | C32—C33—C34—C36 | 4.2 (13) |
N12—C13—C14—C16 | 177.4 (13) | N32—C33—C34—C37 | 61.5 (14) |
C12—C13—C14—C16 | −3.6 (14) | C32—C33—C34—C37 | −117.7 (10) |
N12—C13—C14—C17 | 59.3 (15) | N32—C33—C34—C35 | −57.7 (16) |
C12—C13—C14—C17 | −121.7 (11) | C32—C33—C34—C35 | 123.1 (12) |
H1—B1—N21—C21 | 0.000 (3) | H2—B2—N41—C41 | 0.000 (3) |
N11—B1—N21—C21 | −120.7 (8) | N31i—B2—N41—C41 | 117.1 (7) |
N11i—B1—N21—C21 | 120.6 (8) | N31—B2—N41—C41 | −117.1 (7) |
H1—B1—N21—N22 | 180.000 (3) | H2—B2—N41—N42 | 180.000 (3) |
N11—B1—N21—N22 | 59.3 (8) | N31i—B2—N41—N42 | −62.9 (7) |
N11i—B1—N21—N22 | −59.4 (8) | N31—B2—N41—N42 | 62.9 (7) |
C21—N21—N22—C23 | 0.000 (1) | C41—N41—N42—C43 | 0.000 (1) |
B1—N21—N22—C23 | 180.000 (1) | B2—N41—N42—C43 | 180.000 (1) |
C21—N21—N22—In1 | 180.000 (1) | C41—N41—N42—In2 | 180.0 |
B1—N21—N22—In1 | 0.000 (2) | B2—N41—N42—In2 | 0.000 (1) |
N12—In1—N22—C23 | 137.8 (3) | N32—In2—N42—C43 | 137.5 (3) |
N12i—In1—N22—C23 | −137.8 (3) | N32i—In2—N42—C43 | −137.5 (3) |
N12—In1—N22—N21 | −42.2 (3) | N32—In2—N42—N41 | −42.5 (3) |
N12i—In1—N22—N21 | 42.2 (3) | N32i—In2—N42—N41 | 42.5 (3) |
N22—N21—C21—C22 | 0.000 (1) | N42—N41—C41—C42 | 0.0 |
B1—N21—C21—C22 | 180.000 (1) | B2—N41—C41—C42 | 180.000 (1) |
N22—N21—C21—C27 | 180.000 (1) | N42—N41—C41—C47 | 180.000 (1) |
B1—N21—C21—C27 | 0.000 (2) | B2—N41—C41—C47 | 0.000 (2) |
N21—C21—C22—C23 | 0.000 (1) | N41—C41—C42—C43 | 0.000 (1) |
C27—C21—C22—C23 | 180.000 (1) | C47—C41—C42—C43 | 180.0 |
N21—N22—C23—C22 | 0.000 (1) | N41—N42—C43—C42 | 0.000 (1) |
In1—N22—C23—C22 | 180.000 (1) | In2—N42—C43—C42 | 180.0 |
N21—N22—C23—C24 | 180.000 (1) | N41—N42—C43—C44 | 180.000 (1) |
In1—N22—C23—C24 | 0.000 (1) | In2—N42—C43—C44 | 0.000 (1) |
C21—C22—C23—N22 | 0.000 (1) | C41—C42—C43—N42 | 0.000 (1) |
C21—C22—C23—C24 | 180.000 (1) | C41—C42—C43—C44 | 180.000 (1) |
N22—C23—C24—C26i | −61.6 (4) | N42—C43—C44—C45 | 180.0 |
C22—C23—C24—C26i | 118.4 (4) | C42—C43—C44—C45 | 0.0 |
N22—C23—C24—C26 | 61.6 (4) | N42—C43—C44—C46 | 61.8 (4) |
C22—C23—C24—C26 | −118.4 (4) | C42—C43—C44—C46 | −118.2 (4) |
N22—C23—C24—C25 | 180.000 (1) | N42—C43—C44—C46i | −61.8 (4) |
C22—C23—C24—C25 | 0.000 (1) | C42—C43—C44—C46i | 118.2 (4) |
Symmetry code: (i) −x−1/2, y, z. |
[Ga(C24H40BN6)H][GaCl4] | F(000) = 1448 |
Mr = 705.68 | Dx = 1.407 Mg m−3 |
Monoclinic, P21/c | Mo Kα radiation, λ = 0.71073 Å |
a = 9.5170 (15) Å | Cell parameters from 2436 reflections |
b = 17.753 (3) Å | θ = 2.4–21.5° |
c = 19.763 (3) Å | µ = 1.96 mm−1 |
β = 93.952 (3)° | T = 125 K |
V = 3331.2 (9) Å3 | Plate, colourless |
Z = 4 | 0.08 × 0.03 × 0.02 mm |
Bruker SMART CCD area-detector diffractometer | 5876 independent reflections |
Radiation source: fine-focus sealed tube | 3039 reflections with I > 2σ(I) |
Graphite monochromator | Rint = 0.243 |
ϕ and ω scans | θmax = 25.0°, θmin = 1.5° |
Absorption correction: empirical (using intensity measurements) (SADABS; Bruker, 2007) | h = −11→11 |
Tmin = 0.859, Tmax = 0.962 | k = −21→21 |
35586 measured reflections | l = −23→23 |
Refinement on F2 | Primary atom site location: structure-invariant direct methods |
Least-squares matrix: full | Secondary atom site location: difference Fourier map |
R[F2 > 2σ(F2)] = 0.063 | Hydrogen site location: inferred from neighbouring sites |
wR(F2) = 0.116 | H atoms treated by a mixture of independent and constrained refinement |
S = 1.01 | w = 1/[σ2(Fo2) + (0.025P)2] where P = (Fo2 + 2Fc2)/3 |
5876 reflections | (Δ/σ)max < 0.001 |
353 parameters | Δρmax = 0.65 e Å−3 |
0 restraints | Δρmin = −0.65 e Å−3 |
[Ga(C24H40BN6)H][GaCl4] | V = 3331.2 (9) Å3 |
Mr = 705.68 | Z = 4 |
Monoclinic, P21/c | Mo Kα radiation |
a = 9.5170 (15) Å | µ = 1.96 mm−1 |
b = 17.753 (3) Å | T = 125 K |
c = 19.763 (3) Å | 0.08 × 0.03 × 0.02 mm |
β = 93.952 (3)° |
Bruker SMART CCD area-detector diffractometer | 5876 independent reflections |
Absorption correction: empirical (using intensity measurements) (SADABS; Bruker, 2007) | 3039 reflections with I > 2σ(I) |
Tmin = 0.859, Tmax = 0.962 | Rint = 0.243 |
35586 measured reflections |
R[F2 > 2σ(F2)] = 0.063 | 0 restraints |
wR(F2) = 0.116 | H atoms treated by a mixture of independent and constrained refinement |
S = 1.01 | Δρmax = 0.65 e Å−3 |
5876 reflections | Δρmin = −0.65 e Å−3 |
353 parameters |
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 of F2 against ALL reflections. The weighted R-factor wR and goodness of fit S are based on F2, conventional R-factors R are based on F, with F set to zero for negative F2. The threshold expression of F2 > 2sigma(F2) is used only for calculating R-factors(gt) etc. and is not relevant to the choice of reflections for refinement. R-factors based on F2 are statistically about twice as large as those based on F, and R-factors based on ALL data will be even larger. |
x | y | z | Uiso*/Ueq | ||
Ga1 | 0.52796 (7) | −0.11754 (4) | 0.75445 (4) | 0.0172 (2) | |
H1 | 0.482 (6) | −0.182 (3) | 0.797 (3) | 0.027 (18)* | |
Ga2 | 0.80991 (9) | 0.21620 (5) | 0.51098 (4) | 0.0290 (2) | |
Cl1 | 0.6764 (2) | 0.27063 (13) | 0.58040 (12) | 0.0631 (7) | |
Cl2 | 0.9045 (3) | 0.29659 (14) | 0.44610 (13) | 0.0732 (8) | |
Cl3 | 0.9818 (2) | 0.15992 (12) | 0.56903 (11) | 0.0418 (6) | |
Cl4 | 0.6811 (2) | 0.13766 (12) | 0.44944 (11) | 0.0527 (6) | |
B1 | 0.6191 (8) | 0.0058 (5) | 0.6682 (4) | 0.020 (2) | |
H2 | 0.651 (6) | 0.050 (3) | 0.637 (3) | 0.024* | |
N11 | 0.4566 (5) | 0.0057 (3) | 0.6716 (3) | 0.0201 (14) | |
C11 | 0.3581 (7) | 0.0522 (4) | 0.6427 (3) | 0.0228 (17) | |
N12 | 0.3936 (5) | −0.0477 (3) | 0.7105 (3) | 0.0198 (14) | |
C12 | 0.2297 (7) | 0.0283 (4) | 0.6630 (4) | 0.0249 (18) | |
H12A | 0.1410 | 0.0505 | 0.6503 | 0.030* | |
C13 | 0.2518 (7) | −0.0340 (4) | 0.7051 (3) | 0.0185 (16) | |
C14 | 0.1502 (6) | −0.0784 (4) | 0.7430 (3) | 0.0201 (17) | |
C15 | 0.0004 (7) | −0.0592 (5) | 0.7155 (4) | 0.043 (2) | |
H15A | −0.0197 | −0.0063 | 0.7255 | 0.064* | |
H15B | −0.0667 | −0.0917 | 0.7371 | 0.064* | |
H15C | −0.0083 | −0.0671 | 0.6663 | 0.064* | |
C16 | 0.1666 (8) | −0.0593 (5) | 0.8180 (4) | 0.042 (2) | |
H16A | 0.1458 | −0.0058 | 0.8243 | 0.064* | |
H16B | 0.2635 | −0.0698 | 0.8355 | 0.064* | |
H16C | 0.1012 | −0.0899 | 0.8425 | 0.064* | |
C17 | 0.1685 (7) | −0.1641 (4) | 0.7322 (4) | 0.035 (2) | |
H17A | 0.2585 | −0.1805 | 0.7544 | 0.053* | |
H17B | 0.1673 | −0.1748 | 0.6835 | 0.053* | |
H17C | 0.0913 | −0.1912 | 0.7517 | 0.053* | |
C18 | 0.3942 (7) | 0.1178 (4) | 0.6006 (3) | 0.0290 (18) | |
H18A | 0.4490 | 0.1007 | 0.5633 | 0.044* | |
H18B | 0.4498 | 0.1540 | 0.6287 | 0.044* | |
H18C | 0.3074 | 0.1421 | 0.5820 | 0.044* | |
N21 | 0.6633 (5) | −0.0716 (3) | 0.6413 (3) | 0.0179 (13) | |
C21 | 0.7379 (7) | −0.0899 (4) | 0.5883 (4) | 0.0220 (18) | |
N22 | 0.6283 (5) | −0.1372 (3) | 0.6741 (3) | 0.0197 (14) | |
C22 | 0.7480 (7) | −0.1676 (4) | 0.5863 (3) | 0.0210 (17) | |
H22A | 0.7931 | −0.1963 | 0.5535 | 0.025* | |
C23 | 0.6810 (7) | −0.1960 (4) | 0.6406 (3) | 0.0185 (16) | |
C24 | 0.6637 (7) | −0.2763 (4) | 0.6629 (3) | 0.0213 (17) | |
C25 | 0.7483 (8) | −0.2890 (4) | 0.7295 (4) | 0.046 (2) | |
H25A | 0.8473 | −0.2764 | 0.7244 | 0.069* | |
H25B | 0.7411 | −0.3420 | 0.7428 | 0.069* | |
H25C | 0.7115 | −0.2569 | 0.7645 | 0.069* | |
C26 | 0.5075 (8) | −0.2955 (4) | 0.6694 (4) | 0.045 (2) | |
H26A | 0.4704 | −0.2644 | 0.7050 | 0.067* | |
H26B | 0.4985 | −0.3488 | 0.6811 | 0.067* | |
H26C | 0.4541 | −0.2855 | 0.6262 | 0.067* | |
C27 | 0.7192 (9) | −0.3285 (4) | 0.6092 (4) | 0.052 (3) | |
H27A | 0.8182 | −0.3166 | 0.6032 | 0.078* | |
H27B | 0.6636 | −0.3213 | 0.5661 | 0.078* | |
H27C | 0.7115 | −0.3810 | 0.6239 | 0.078* | |
C28 | 0.7950 (8) | −0.0326 (4) | 0.5427 (4) | 0.032 (2) | |
H28A | 0.8572 | 0.0019 | 0.5695 | 0.047* | |
H28B | 0.7171 | −0.0041 | 0.5201 | 0.047* | |
H28C | 0.8485 | −0.0578 | 0.5086 | 0.047* | |
N31 | 0.6834 (5) | 0.0148 (3) | 0.7418 (3) | 0.0168 (13) | |
C31 | 0.7637 (7) | 0.0693 (4) | 0.7730 (3) | 0.0202 (17) | |
N32 | 0.6586 (5) | −0.0395 (3) | 0.7898 (3) | 0.0163 (13) | |
C32 | 0.7914 (7) | 0.0493 (4) | 0.8398 (4) | 0.0240 (18) | |
H32A | 0.8453 | 0.0773 | 0.8733 | 0.029* | |
C33 | 0.7268 (7) | −0.0189 (4) | 0.8490 (3) | 0.0208 (17) | |
C34 | 0.7202 (8) | −0.0639 (4) | 0.9131 (3) | 0.0280 (19) | |
C35 | 0.8147 (9) | −0.0263 (5) | 0.9695 (4) | 0.055 (3) | |
H35A | 0.9128 | −0.0272 | 0.9573 | 0.082* | |
H35B | 0.8069 | −0.0538 | 1.0121 | 0.082* | |
H35C | 0.7847 | 0.0260 | 0.9751 | 0.082* | |
C36 | 0.7734 (7) | −0.1441 (4) | 0.9029 (4) | 0.032 (2) | |
H36A | 0.7078 | −0.1708 | 0.8709 | 0.049* | |
H36B | 0.7799 | −0.1706 | 0.9465 | 0.049* | |
H36C | 0.8667 | −0.1422 | 0.8848 | 0.049* | |
C37 | 0.5678 (8) | −0.0651 (4) | 0.9346 (4) | 0.039 (2) | |
H37A | 0.5082 | −0.0935 | 0.9012 | 0.059* | |
H37C | 0.5326 | −0.0134 | 0.9372 | 0.059* | |
H37D | 0.5656 | −0.0892 | 0.9791 | 0.059* | |
C38 | 0.8094 (8) | 0.1369 (4) | 0.7359 (4) | 0.032 (2) | |
H38C | 0.7265 | 0.1630 | 0.7152 | 0.047* | |
H38D | 0.8702 | 0.1213 | 0.7003 | 0.047* | |
H38A | 0.8616 | 0.1708 | 0.7676 | 0.047* |
U11 | U22 | U33 | U12 | U13 | U23 | |
Ga1 | 0.0138 (4) | 0.0193 (4) | 0.0185 (4) | 0.0004 (4) | 0.0019 (3) | 0.0008 (4) |
Ga2 | 0.0323 (5) | 0.0248 (5) | 0.0303 (5) | 0.0068 (4) | 0.0037 (4) | 0.0039 (4) |
Cl1 | 0.0606 (16) | 0.0637 (17) | 0.0660 (17) | 0.0216 (13) | 0.0124 (13) | −0.0239 (14) |
Cl2 | 0.0654 (17) | 0.0650 (17) | 0.089 (2) | −0.0020 (14) | 0.0020 (14) | 0.0549 (16) |
Cl3 | 0.0333 (12) | 0.0471 (14) | 0.0453 (14) | 0.0103 (10) | 0.0039 (10) | 0.0192 (11) |
Cl4 | 0.0771 (17) | 0.0407 (14) | 0.0379 (13) | −0.0003 (12) | −0.0135 (12) | −0.0022 (11) |
B1 | 0.021 (5) | 0.017 (5) | 0.022 (5) | −0.005 (4) | −0.005 (4) | 0.005 (4) |
N11 | 0.019 (3) | 0.019 (3) | 0.023 (4) | 0.003 (3) | 0.005 (3) | 0.001 (3) |
C11 | 0.023 (4) | 0.015 (4) | 0.029 (5) | 0.005 (3) | −0.005 (3) | 0.006 (4) |
N12 | 0.012 (3) | 0.021 (3) | 0.026 (4) | 0.002 (3) | 0.006 (3) | 0.000 (3) |
C12 | 0.019 (4) | 0.021 (4) | 0.033 (5) | 0.006 (3) | −0.011 (4) | 0.001 (4) |
C13 | 0.015 (4) | 0.024 (4) | 0.017 (4) | 0.002 (3) | 0.005 (3) | −0.007 (3) |
C14 | 0.011 (4) | 0.022 (4) | 0.027 (5) | 0.004 (3) | 0.001 (3) | −0.001 (4) |
C15 | 0.016 (4) | 0.051 (6) | 0.062 (6) | 0.008 (4) | 0.001 (4) | 0.015 (5) |
C16 | 0.040 (5) | 0.051 (6) | 0.037 (6) | −0.011 (4) | 0.011 (4) | −0.001 (5) |
C17 | 0.026 (5) | 0.026 (5) | 0.055 (6) | −0.002 (4) | 0.015 (4) | 0.006 (4) |
C18 | 0.029 (4) | 0.025 (4) | 0.031 (4) | 0.004 (4) | −0.008 (3) | 0.003 (4) |
N21 | 0.019 (3) | 0.015 (3) | 0.019 (4) | −0.001 (3) | −0.002 (3) | 0.002 (3) |
C21 | 0.013 (4) | 0.029 (5) | 0.024 (5) | 0.001 (3) | 0.003 (3) | 0.008 (4) |
N22 | 0.019 (3) | 0.020 (3) | 0.020 (3) | −0.001 (3) | 0.002 (3) | −0.004 (3) |
C22 | 0.026 (4) | 0.017 (4) | 0.020 (4) | 0.002 (3) | 0.006 (3) | −0.001 (3) |
C23 | 0.021 (4) | 0.019 (4) | 0.016 (4) | −0.002 (3) | 0.003 (3) | −0.002 (3) |
C24 | 0.030 (4) | 0.016 (4) | 0.020 (4) | 0.000 (3) | 0.011 (3) | −0.002 (3) |
C25 | 0.054 (6) | 0.026 (5) | 0.057 (6) | 0.012 (4) | −0.005 (5) | 0.012 (4) |
C26 | 0.049 (6) | 0.024 (5) | 0.063 (6) | −0.005 (4) | 0.018 (5) | 0.006 (4) |
C27 | 0.084 (7) | 0.026 (5) | 0.051 (6) | −0.009 (5) | 0.036 (5) | −0.002 (4) |
C28 | 0.047 (5) | 0.023 (4) | 0.028 (5) | 0.004 (4) | 0.021 (4) | 0.002 (4) |
N31 | 0.011 (3) | 0.020 (3) | 0.020 (3) | 0.002 (3) | 0.005 (2) | 0.004 (3) |
C31 | 0.018 (4) | 0.020 (4) | 0.023 (5) | −0.001 (3) | 0.007 (3) | −0.010 (4) |
N32 | 0.013 (3) | 0.021 (3) | 0.015 (3) | 0.000 (3) | 0.003 (3) | 0.001 (3) |
C32 | 0.025 (4) | 0.026 (4) | 0.019 (5) | −0.007 (4) | −0.006 (3) | −0.001 (4) |
C33 | 0.021 (4) | 0.027 (4) | 0.015 (4) | −0.003 (3) | 0.003 (3) | −0.009 (3) |
C34 | 0.038 (5) | 0.033 (5) | 0.013 (4) | −0.017 (4) | −0.001 (4) | −0.002 (4) |
C35 | 0.079 (7) | 0.066 (7) | 0.017 (5) | −0.027 (5) | −0.009 (5) | 0.014 (4) |
C36 | 0.029 (5) | 0.039 (5) | 0.028 (5) | 0.005 (4) | −0.003 (4) | 0.015 (4) |
C37 | 0.045 (5) | 0.047 (5) | 0.027 (5) | −0.006 (4) | 0.008 (4) | −0.003 (4) |
C38 | 0.040 (5) | 0.017 (4) | 0.039 (5) | −0.008 (4) | 0.009 (4) | 0.002 (4) |
Ga1—H1 | 1.49 (6) | N21—C21 | 1.346 (8) |
Ga1—N22 | 1.941 (5) | N21—N22 | 1.385 (7) |
Ga1—N12 | 1.942 (5) | C21—C22 | 1.383 (9) |
Ga1—N32 | 1.958 (5) | C21—C28 | 1.486 (9) |
Ga2—Cl2 | 2.156 (2) | N22—C23 | 1.350 (8) |
Ga2—Cl1 | 2.161 (2) | C22—C23 | 1.380 (8) |
Ga2—Cl4 | 2.173 (2) | C23—C24 | 1.506 (9) |
Ga2—Cl3 | 2.175 (2) | C24—C25 | 1.511 (9) |
B1—N21 | 1.542 (9) | C24—C27 | 1.530 (9) |
B1—N31 | 1.547 (9) | C24—C26 | 1.539 (9) |
B1—N11 | 1.553 (9) | N31—C31 | 1.355 (8) |
N11—C11 | 1.346 (8) | N31—N32 | 1.384 (7) |
N11—N12 | 1.383 (7) | C31—C32 | 1.375 (9) |
C11—C12 | 1.378 (9) | C31—C38 | 1.486 (9) |
C11—C18 | 1.486 (9) | N32—C33 | 1.349 (8) |
N12—C13 | 1.368 (8) | C32—C33 | 1.376 (9) |
C12—C13 | 1.391 (9) | C33—C34 | 1.502 (9) |
C13—C14 | 1.489 (9) | C34—C36 | 1.529 (10) |
C14—C16 | 1.518 (9) | C34—C35 | 1.536 (10) |
C14—C15 | 1.529 (9) | C34—C37 | 1.540 (9) |
C14—C17 | 1.547 (9) | ||
H1—Ga1—N22 | 120 (2) | N22—N21—B1 | 120.6 (5) |
H1—Ga1—N12 | 122 (2) | N21—C21—C22 | 107.7 (6) |
N22—Ga1—N12 | 95.4 (2) | N21—C21—C28 | 122.7 (6) |
H1—Ga1—N32 | 123 (2) | C22—C21—C28 | 129.6 (7) |
N22—Ga1—N32 | 94.8 (2) | C23—N22—N21 | 108.2 (5) |
N12—Ga1—N32 | 95.2 (2) | C23—N22—Ga1 | 139.5 (5) |
Cl2—Ga2—Cl1 | 111.67 (11) | N21—N22—Ga1 | 112.3 (4) |
Cl2—Ga2—Cl4 | 109.53 (10) | C23—C22—C21 | 107.8 (6) |
Cl1—Ga2—Cl4 | 107.98 (10) | N22—C23—C22 | 107.8 (6) |
Cl2—Ga2—Cl3 | 106.75 (9) | N22—C23—C24 | 122.5 (6) |
Cl1—Ga2—Cl3 | 108.91 (10) | C22—C23—C24 | 129.7 (6) |
Cl4—Ga2—Cl3 | 112.04 (9) | C23—C24—C25 | 109.5 (6) |
N21—B1—N31 | 108.4 (6) | C23—C24—C27 | 108.7 (5) |
N21—B1—N11 | 108.0 (6) | C25—C24—C27 | 109.0 (6) |
N31—B1—N11 | 106.9 (6) | C23—C24—C26 | 111.0 (6) |
C11—N11—N12 | 109.9 (5) | C25—C24—C26 | 110.8 (6) |
C11—N11—B1 | 130.3 (6) | C27—C24—C26 | 107.8 (6) |
N12—N11—B1 | 119.8 (5) | C31—N31—N32 | 107.7 (5) |
N11—C11—C12 | 107.1 (6) | C31—N31—B1 | 132.5 (6) |
N11—C11—C18 | 122.5 (6) | N32—N31—B1 | 119.9 (5) |
C12—C11—C18 | 130.4 (6) | N31—C31—C32 | 108.5 (6) |
C13—N12—N11 | 107.3 (5) | N31—C31—C38 | 121.8 (6) |
C13—N12—Ga1 | 139.9 (5) | C32—C31—C38 | 129.7 (7) |
N11—N12—Ga1 | 112.9 (4) | C33—N32—N31 | 108.1 (5) |
C11—C12—C13 | 108.5 (6) | C33—N32—Ga1 | 139.2 (5) |
N12—C13—C12 | 107.2 (6) | N31—N32—Ga1 | 112.5 (4) |
N12—C13—C14 | 122.5 (6) | C31—C32—C33 | 107.3 (6) |
C12—C13—C14 | 130.2 (6) | N32—C33—C32 | 108.5 (6) |
C13—C14—C16 | 110.2 (6) | N32—C33—C34 | 122.8 (6) |
C13—C14—C15 | 109.0 (6) | C32—C33—C34 | 128.7 (6) |
C16—C14—C15 | 109.1 (6) | C33—C34—C36 | 110.5 (6) |
C13—C14—C17 | 111.6 (6) | C33—C34—C35 | 109.0 (6) |
C16—C14—C17 | 110.4 (6) | C36—C34—C35 | 108.5 (6) |
C15—C14—C17 | 106.4 (6) | C33—C34—C37 | 109.6 (6) |
C21—N21—N22 | 108.5 (5) | C36—C34—C37 | 110.5 (6) |
C21—N21—B1 | 130.9 (6) | C35—C34—C37 | 108.7 (6) |
Experimental details
(I) | (II) | (III) | |
Crystal data | |||
Chemical formula | [In(C15H22BN6)] | [In(C24H40BN6)] | [Ga(C24H40BN6)H][GaCl4] |
Mr | 412.02 | 538.25 | 705.68 |
Crystal system, space group | Orthorhombic, Pnma | Orthorhombic, Ama2 | Monoclinic, P21/c |
Temperature (K) | 125 | 125 | 125 |
a, b, c (Å) | 17.1939 (7), 13.3487 (5), 7.7658 (3) | 16.6414 (8), 15.8504 (7), 10.3779 (5) | 9.5170 (15), 17.753 (3), 19.763 (3) |
α, β, γ (°) | 90, 90, 90 | 90, 90, 90 | 90, 93.952 (3), 90 |
V (Å3) | 1782.38 (12) | 2737.4 (2) | 3331.2 (9) |
Z | 4 | 4 | 4 |
Radiation type | Mo Kα | Mo Kα | Mo Kα |
µ (mm−1) | 1.33 | 0.89 | 1.96 |
Crystal size (mm) | 0.20 × 0.10 × 0.10 | 0.30 × 0.15 × 0.10 | 0.08 × 0.03 × 0.02 |
Data collection | |||
Diffractometer | Bruker SMART CCD area-detector diffractometer | Bruker APEXII CCD area-detector diffractometer | Bruker SMART CCD area-detector diffractometer |
Absorption correction | Empirical (using intensity measurements) (SADABS; Bruker, 2007) | Empirical (using intensity measurements) (SADABS; Bruker, 2007) | Empirical (using intensity measurements) (SADABS; Bruker, 2007) |
Tmin, Tmax | 0.776, 0.878 | 0.777, 0.917 | 0.859, 0.962 |
No. of measured, independent and observed [I > 2σ(I)] reflections | 23607, 2311, 2124 | 22008, 4378, 4151 | 35586, 5876, 3039 |
Rint | 0.036 | 0.028 | 0.243 |
(sin θ/λ)max (Å−1) | 0.667 | 0.718 | 0.595 |
Refinement | |||
R[F2 > 2σ(F2)], wR(F2), S | 0.026, 0.076, 1.09 | 0.019, 0.043, 1.00 | 0.063, 0.116, 1.01 |
No. of reflections | 2311 | 4378 | 5876 |
No. of parameters | 120 | 295 | 353 |
No. of restraints | 1 | 797 | 0 |
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 |
Δρmax, Δρmin (e Å−3) | 0.86, −0.56 | 0.29, −0.25 | 0.65, −0.65 |
Absolute structure | ? | Flack (1983), with how many Friedel pairs? | ? |
Absolute structure parameter | ? | −0.051 (15) | ? |
Computer programs: SMART (Bruker, 2007), APEX2 (Bruker, 2007), SAINT (Bruker, 2007), SHELXS97 (Sheldrick, 2008), SHELXL97 (Sheldrick, 2008), SHELXTL (Sheldrick, 2008).
In1—N22 | 2.3658 (19) | In1—N12 | 2.369 (3) |
N22—In1—N22i | 77.37 (9) | N22—In1—N12 | 78.30 (7) |
Symmetry code: (i) x, −y+1/2, z. |
In1—N22 | 2.397 (7) | In2—N42 | 2.372 (8) |
In1—N12 | 2.443 (7) | In2—N32 | 2.405 (8) |
N22—In1—N12 | 76.7 (3) | N42—In2—N32 | 79.5 (3) |
N12—In1—N12i | 81.6 (6) | N32—In2—N32i | 83.3 (6) |
Symmetry code: (i) −x−1/2, y, z. |
Ga1—H1 | 1.49 (6) | Ga2—Cl2 | 2.156 (2) |
Ga1—N22 | 1.941 (5) | Ga2—Cl1 | 2.161 (2) |
Ga1—N12 | 1.942 (5) | Ga2—Cl4 | 2.173 (2) |
Ga1—N32 | 1.958 (5) | Ga2—Cl3 | 2.175 (2) |
H1—Ga1—N22 | 120 (2) | Cl2—Ga2—Cl1 | 111.67 (11) |
H1—Ga1—N12 | 122 (2) | Cl2—Ga2—Cl4 | 109.53 (10) |
N22—Ga1—N12 | 95.4 (2) | Cl1—Ga2—Cl4 | 107.98 (10) |
H1—Ga1—N32 | 123 (2) | Cl2—Ga2—Cl3 | 106.75 (9) |
N22—Ga1—N32 | 94.8 (2) | Cl1—Ga2—Cl3 | 108.91 (10) |
N12—Ga1—N32 | 95.2 (2) | Cl4—Ga2—Cl3 | 112.04 (9) |
Compound | (In—N)av (Å) | (N—In—N)av (°) | Σ(N—In—N) (°) | P (°)a | Reference |
[TpPh]In | 2.430 | 78.2 | 234.7 | 125.3 | Frazer et al. (1994) |
[TpMe,Me]In | 2.367 | 78.0 | 234.0 | 126.0 | This work |
[TpBu,Me]Inb | 2.411 | 79.6 | 238.7 | 121.4 | This work |
[TpBu]In | 2.488 | 79.3 | 237.9 | 122.1 | Kuchta, Bonanno & Parkin (1996) or Kuchta, Dias et al. (1996) ? |
[TpBu,Bu]In | 2.468 | 79.9 | 239.7 | 120.3 | Kuchta, Bonanno & Parkin (1996) or Kuchta, Dias et al. (1996) ? |
[TpCF3,CF3]In | 2.578 | 71.5 | 214.6 | 145.4 | Dias & Jin (2000) |
[TpMe,Me]InCl2.MeCN | 2.293 | c | c | c | Cowley et al. (1988) |
[TpMe,Me]InFe(CO)4 | 2.199 | 85.3 | 256.0 | 104.0 | Reger et al. (1994) |
[TpMe,Me]InW(CO)5 | 2.246 | 82.8 | 248.3 | 111.7 | Reger et al. (1994) |
[TpBu,Bu]InSe | 2.242 | 86.4 | 259.3 | 100.7 | Kuchta & Parkin (1995) |
{[TpMe,Me]In2}+ | 2.241 | 84.9 | 254.7 | 105.3 | Frazer et al. (1992) |
Notes: (a) pyramidality, P = 360° - Σ(N—In—N). (b) Average values for two disordered configurations. (c) Values not listed by Cowley et al. (1988). |
Compound | (M—N)av (Å) | M—H (Å) | Reference |
Be[TpBu]H | 1.778 | 1.228 (70) | Han & Parkin (1992) |
[Ga(TpBu,Me)H][GaCl4] | 1.947 | 1.51 (6) | This work |
Co[TpBu,Me]H | 2.039 | 1.69 (4) | Jewson et al. (1999) |
Since its introduction by Trofimenko in 1966 (Trofimenko, 1966), the poly(pyrazolylborate) ligand system, and most notably the bis- and tris(pyrazolyl)hydroborate derivatives, denoted [BpR,R'] and [TpR,R'], respectively, has proven to be of immense value to coordination chemists (Trofimenko, 1999, 2004; Parkin, 1995; Kitajima & Tolman, 1995; Pettinari, 2008; Santini et al., 2010; Armbruster et al., 2009). Furthermore, the poly(pyrazolylborate) ligand system has also inspired the creation of a variety of related ligands, as exemplified by tris(mercaptoimidazolyl)hydroborate and tris(imidazolylidene)hydroborate derivatives (Spicer & Reglinski, 2009; Parkin, 2007; Smith, 2008). We report here the application of [TpR,R'] ligands to Group 13 element chemistry, with specific emphasis on the structural characterization of trivalent gallium hydride and monovalent indium compounds.
Although a large variety of tris(pyrazolyl)hydroborate complexes of the Group 13 metals have been reported, the majority of these investigations pertain to trivalent complexes (Reger, 1996). For example, the first tris(pyrazolyl)hydroborate indium complex, namely trivalent [TpMe,Me]InCl2.MeCN, was reported in 1988 (Cowley et al., 1988). Nevertheless, despite the prominence of trivalent compounds, the [TpR,R'] ligand system is also capable of affording monovalent compounds, as illustrated by our report of the use of the sterically demanding tris(3,5-di-tert-butylpyrazolyl)hydroborate ligand [TpBu,Bu] ligand to synthesize [TpBu,Bu]Ga, the first monomeric monovalent gallium compound (Kuchta, Bonanno & Parkin, 1996 or Kuchta, Dias et al., 1996 ?). Moreover, trifluoromethyl substituents have likewise been shown to enable the isolation of monovalent [TpCF3,CF3]Ga (Dias & Jin, 2000).
Sterically demanding substituents have also allowed for the synthesis of monovalent indium derivatives of [TpR,R'], as illustrated by [TpPh]In (Frazer et al., 1994), [TpBu]In (Kuchta, Bonanno & Parkin, 1996 or Kuchta, Dias et al., 1996 ?; Dias et al., 1995), [TpBu,Bu]In (Dias et al., 1995) and [TpCF3,CF3]In (Dias & Jin, 1996, 2000). However, despite the fact that monovalent [TpR,R']In has been isolated when the [TpR,R'] ligand features bulky substituents, efforts to synthesize the methyl counterpart, [TpMe,Me]In, have been unsuccessful (Dias & Jin, 1996, 2000; Frazer et al., 1994). Specifically, rather than yield the required [TpMe,Me]In, the reaction of [TpMe,Me]K with InI gives the trivalent complex [In(TpMe,Me)2]I (Frazer et al., 1992). It is, therefore, significant that we have been able to isolate [tris(3,5-dimethyl-1H-pyrazol-1-yl-κN2)hydroborato]indium(I), (I), abbreviated as [TpMe,Me]In, from the reaction of [TpMe,Me]K with InCl (see Scheme 1). The compound was structurally characterized by X-ray diffraction (Fig. 1). In addition, we have also isolated and structurally characterized [tris(3-tert-butyl-5-methyl-1H-pyrazol-1-yl-κN2)hydroborato]indium(I), (II), abbreviated as [TpBu,Me]In (Fig. 2), and have previously reported the Tl counterpart (Yoon & Parkin, 1995).
Since [TpMe,Me]In, (I), and [TpBu,Me]In, (II), possess a common 5-methyl substituent, comparison of their structures provides a means of assessing the impact of a 3-methyl versus a 3-tert-butyl substituent and, interestingly, the In—N bond lengths of (I) (average 2.367 Å; Table 2) are only slightly shorter than those of (II) (average 2.411 Å; Table 3). For comparison, the range of In—N bond lengths is 1.93–2.93 Å (average 2.28 Å) in the Cambridge Structural Database (CSD, Version 5.34; Allen, 2002). In this regard, the In—N bonds in all of these monovalent (Parkin, 2006) [TpR,R']In compounds are considerably longer than those in trivalent compounds such as [TpMe,Me]InCl2.MeCN (Cowley et al., 1988), [In{TpMe,Me}]+ (Frazer et al., 1992), [TpBu,Bu]InSe (Kuchta & Parkin, 1995), and [WIn{TpMe,Me}(CO)5] (Reger et al., 1994).
The structural characterization of (II) also completes the series of compounds [TpBu,R]In for which the 5-R substituent is H, Me and Bu. It is of note that only the Bu substituent is sufficiently large to cause a significant propeller-like twist, such that the In···B axis is not coincident with the pyrazolyl planes and the molecular geometry deviates considerably from C3v symmetry. However, despite this twist, the coordination geometry about the In atom is similar in all three compounds (Tables 2–4).
The most interesting feature of (I) and (II) is that the N—In—N angles are very acute, such that the indium centers are highly pyramidal. A simple measure of the degree of the pyramidality (P) is provided by the deviation of the sum of the N—In—N bond angles from 360°, i.e. P = 360° - Σ(N—In—N), and the values of P for (I) (126.0°) and (II) (121.4°) are in the range observed for other monovalent [TpR,R']In compounds (Table 4). Furthermore, the indium centers of all of the monovalent [TpR,R']In compounds are distinctly more pyramidal than those of the [TpR,R']In fragments in four-, five- and six-coordinate compounds. For example, the pyramidalities of indium in four-coordinate [TpBu,Bu]InSe (Kuchta & Parkin, 1995) and [WIn{TpMe,Me}(CO)5] (Reger et al., 1994) are 100.7 and 111.7°, respectively. It is also of note that the pyramidality of indium in all of the three-coordinate [TpR,R']In derivatives (120.3–145.4°) is significantly greater than that of the tris(mercaptoimidazolyl)hydroborate counterpart, In[TmBu] (96.3°; Yurkerwich et al., 2008). Although In[TmBu] differs from [TpR,R']In in that the former has an S3 coordination environment, the reduced pyramidality of the former is presumably a consequence of the greater flexibility of the [TmBu] ligand due to the greater chelate ring size.
With respect to comparisons within the [TpR,R']In series of complexes, the most interesting observation is that the trifluoromethyl derivative [TpCF3,CF3]In is significantly more pyramidal (145.4°) than the other derivatives (120.3–126.0°). In this regard, the average In—N bond for [TpCF3,CF3]In (2.578 Å) is longer than those in other [TpR,R']In derivatives (2.367–2.488 Å), as summarized in Table 4. Density functional theory (DFT; B3LYP level; see Refinement for details) calculations reproduce this trend, with [TpCF3,CF3]In having the longest In—N bonds and the most pyramidal indium center. Furthermore, a natural bond orbital (NBO) analysis (Weinhold & Landis, 2005; Weinhold, 2012; Glendening et al., 2012) indicates that the highest occupied orbital of each of the [TpR,R']In compounds is an indium spn lone-pair hybrid orbital (Fig. 3), for which [TpCF3,CF3]In (95.8°) and (I) (90.7°) possess the greatest and least amount of 5s character, respectively. Finally, the pyramidality of the In atom in [TpR,R']In is intermediate between those of gallium and thallium, as illustrated by the values for [TpBu,Bu]Ga (107.3°; Dias & Jin, 2000), [TpBu,Bu]In (120.3°; Frazer et al., 1994) and [TpBu,Bu]Tl (125.8°; Dowling et al., 1995), a trend that is anticipated on the basis of the variation in the covalent radii of Ga (1.22 Å), In (1.42 Å) and Tl (1.45 Å) (Cordero et al., 2008).
In addition to the synthesis of monovalent [TpBu,Bu]Ga (Kuchta, Bonanno & Parkin, 1996 or Kuchta, Dias et al., 1996 ?), we have previously employed [TpR,R'] ligands to afford a variety of trivalent gallium compounds, including [TpBu,Bu]Ga→ GaI3 (Kuchta, Bonanno & Parkin, 1996 or Kuchta, Dias et al., 1996 ?), [TpMe,Me]Ga→ GaX3 (X = Cl, I), [TpMe,Me]GaGaI2GaI2(HpzMe2) and [TpMe,Me]Ga(GaI2)2Ga[TpMe,Me] (Yurkerwich & Parkin, 2010). We now report that a tris(pyrazolyl)hydroborate ligand can be used to obtain a gallium hydride complex. Specifically, hydrido[tris(3-tert-butyl-5-methyl-1H-pyrazol-1-yl-κN2)hydroborato]gallium(III) tetrachloridogallium(III), [Ga(TpBu,Me)H][GaCl4], (III), may be obtained via the reaction of [TpBu,Me]Tl with [HGaCl2]2 (Nogai & Schmidbaur, 2002; Alexander & Cole, 2008), as illustrated in Scheme 2.
The molecular structure of (III) has been determined by X-ray diffraction, as illustrated in Fig. 4, thereby demonstrating that the compound consists of a discrete monomeric cationic gallium species that features a terminal hydride ligand. In this regard, tris(pyrazolyl)hydroborate ligands have been employed to synthesize several other monomeric [TpR,R']MH compounds, namely [TpBu]BeH (Han & Parkin, 1992), [TpBu]ZnH (Looney et al., 1995; Han et al., 1991), [TpBu,Me]ZnH (Bergquist & Parkin, 1999), [TpPh,Me]ZnH (Rombach et al., 2002), [TpBu]CdH (Reger et al., 1993) and [TpBu,Me]CoH (Jewson et al., 1999). For comparison, selected bond-length data are summarized in Table 5. It is of note that the Ga—H bond length of 1.49 (6) Å compares favorably with the mean value of 1.50 Å for structurally characterized gallium hydride compounds that are listed in the CSD, and also with the value in the DFT geometry-optimized [Ga(TpBu,Me)H]+ cation (1.53 Å). The Ga–N bonds of [Ga(TpBu,Me)H]+ (Table 6) are comparable with, although slightly shorter than, the average values in related trivalent [TpR,R']Ga compounds, [Ga(TpMe,Me)2]+ (2.064 Å; Cowley et al., 1988), [TpBu,Bu]GaTe (2.060 Å; Kuchta & Parkin, 1997) and [FeGa(TpMe,Me)(CO)4] (1.990 Å; Reger et al., 1994), but all of these bonds are distinctly shorter than that for the monovalent gallium compound [TpBu,Bu]Ga (2.230 Å; Kuchta, Bonanno & Parkin, 1996 or Kuchta, Dias et al., 1996 ?).
In conclusion, tris(pyrazolyl)hydroborate ligation has been used to isolate mononuclear examples of trivalent gallium hydride and monovalent indium complexes, namely [Ga(TpBu,Me)H][GaCl4], [TpMe,Me]In and [TpBu,Me]In, all of which have been structurally characterized by X-ray diffraction.