State Key Laboratory of Coordination Chemistry, School of Chemistry and Chemical Engineering, Nanjing University , Nanjing, Jiangsu 210093, China.
Computational and Theoretical Chemistry Group (CATCO), Department of Chemistry, Southern Methodist University , Dallas, Texas 75275-0314, United States.
J Am Chem Soc. 2016 Apr 6;138(13):4334-7. doi: 10.1021/jacs.6b01249. Epub 2016 Feb 29.
For the first time, nonclassical hydrogen (H)-bonding involving a B-H···π interaction is described utilizing both quantum chemical predictions and experimental realization. In the gas phase, a B-H···π H-bond is observed in either B2H6···benzene (ΔE = -5.07 kcal/mol) or carborane···benzene (ΔE = -3.94 kcal/mol) complex at reduced temperatures. Ir-dimercapto-carborane complexes [CpIr(S2C2B10H10)] are designed to react with phosphines PR3 (R = C6H4X, X = H, F, OMe) to give [CpIr(PR3)S2C2B10H10] for an investigation of B-H···π interactions at ambient temperatures. X-ray diffraction studies reveal that the interaction between the carborane BH bonds and the phosphine aryl substituents involves a BH···π H-bond (H···π distance: 2.40-2.76 Å). (1)H NMR experiments reveal that B-H···π interactions exist in solution according to measured (1)H{(11)B} signals at ambient temperatures in the range 0.0 ≤ δ ≤ 0.3 ppm. These are high-field shifted by more than 1.5 ppm relative to the (1)H{(11)B} signals obtained for the PMe3 analog without B-H···π bonding. Quantum chemical calculations suggest that the interaction is electrostatic and the local (B)H···ring stretching force constant is as large as the H-bond stretching force constant in the water dimer.
首次描述了涉及 B-H···π 相互作用的非经典氢键,同时利用量子化学预测和实验实现。在气相中,在 B2H6···苯(ΔE = -5.07 kcal/mol)或碳硼烷···苯(ΔE = -3.94 kcal/mol)复合物中,观察到 B-H···π 氢键在降低温度下存在。设计了 Ir-二巯基碳硼烷配合物 [Cp*Ir(S2C2B10H10)] 与膦 PR3(R = C6H4X,X = H、F、OMe)反应,以在环境温度下研究 B-H···π 相互作用。X 射线衍射研究表明,碳硼烷 BH 键与膦芳基取代基之间的相互作用涉及 BH···π 氢键(H···π 距离:2.40-2.76 Å)。根据环境温度下 0.0 ≤ δ ≤ 0.3 ppm 范围内测得的(1)H{(11)B}信号,1H NMR 实验表明在溶液中存在 B-H···π 相互作用。这些信号相对于没有 B-H···π 键合的 PMe3 类似物的(1)H{(11)B}信号在高场移动超过 1.5 ppm。量子化学计算表明,相互作用是静电的,局部(B)H···环拉伸力常数与水二聚体中的氢键拉伸力常数一样大。