Golub Igor E, Gulyaeva Ekaterina S, Filippov Oleg A, Dyadchenko Victor P, Belkova Natalia V, Epstein Lina M, Arkhipov Dmitry E, Shubina Elena S
†A.N. Nesmeyanov Institute of Organoelement Compounds, Russian Academy of Sciences, Vavilova 28, 119991 Moscow, Russia.
‡Department of Chemistry, M.V. Lomonosov Moscow State University, Leninskie Gory 1/3, 119234 Moscow, Russia.
J Phys Chem A. 2015 Apr 23;119(16):3853-68. doi: 10.1021/acs.jpca.5b01921. Epub 2015 Apr 9.
Dimethylamine-borane (DMAB) acid/base properties, its dihydrogen-bonded (DHB) complexes and proton transfer reaction in nonaqueous media were investigated both experimentally (IR, UV/vis, NMR, and X-ray) and theoretically (DFT, NBO, QTAIM, and NCI). The effects of DMAB concentration, solvents polarity and temperature on the degree of DMAB self-association are shown and the enthalpy of association is determined experimentally for the first time (-ΔH°assoc = 1.5-2.3 kcal/mol). The first case of "improper" (blue-shifting) NH···F hydrogen bonds was observed in fluorobenzene and perfluorobenzene solutions. It was shown that hydrogen-bonded complexes are the intermediates of proton transfer from alcohols and phenols to DMAB. The reaction mechanism was examined computationally taking into account the coordinating properties of the reaction media. The values of the rate constants of proton transfer from HFIP to DMAB in acetone were determined experimentally [(7.9 ± 0.1) × 10(-4) to (1.6 ± 0.1) × 10(-3) mol(-1)·s(-1)] at 270-310 K. Computed activation barrier of this reaction ΔG(‡theor)298 K(acetone) = 23.8 kcal/mol is in good agreement with the experimental value of the activation free energy ΔG(‡exp)270 K = 21.1 kcal/mol.
对二甲胺硼烷(DMAB)的酸碱性质、其二氢键(DHB)配合物以及在非水介质中的质子转移反应进行了实验(红外光谱、紫外/可见光谱、核磁共振和X射线)和理论(密度泛函理论、自然键轨道理论、量子拓扑原子理论和非共价相互作用)研究。展示了DMAB浓度、溶剂极性和温度对DMAB自缔合程度的影响,并首次通过实验测定了缔合焓(-ΔH°assoc = 1.5 - 2.3千卡/摩尔)。在氟苯和全氟苯溶液中观察到了首例“反常”(蓝移)NH···F氢键。结果表明,氢键配合物是质子从醇类和酚类转移至DMAB的中间体。考虑到反应介质的配位性质,通过计算研究了反应机理。在270 - 310 K下,实验测定了质子从六氟异丙醇转移至丙酮中DMAB的速率常数[(7.9 ± 0.1) × 10(-4)至(1.6 ± 0.1) × 10(-3)摩尔(-1)·秒(-1)]。该反应计算得到的活化能垒ΔG(‡theor)298 K(丙酮) = 23.8千卡/摩尔与实验测得的活化自由能ΔG(‡exp)270 K = 21.1千卡/摩尔高度吻合。