Sagan Filip, Piękoś Łukasz, Andrzejak Marcin, Mitoraj Mariusz Paweł
Department of Theoretical Chemistry, Faculty of Chemistry, Jagiellonian University, R. Ingardena 3, 30-060 Cracow (Poland).
Chemistry. 2015 Oct 19;21(43):15299-307. doi: 10.1002/chem.201502629. Epub 2015 Sep 4.
In the present study, the inorganic analogues of alkanes as well as their isoelectronic BN/CC counterparts that bridge the gap between organic and inorganic chemistry are comparatively studied on the grounds of static DFT and Car-Parrinello molecular dynamics simulations. The BN/CC butanes CH3 CH2 BH2 NH3 , BH3 CH2 NH2 CH3 , and NH3 CH2 BH2 CH3 were considered and compared with their isoelectronic counterparts NH3 BH2 NH2 BH3 and CH3 CH2 CH2 CH3 . In addition, systematical replacement of the NH2 BH2 fragment by the isoelectronic CH2 CH2 moiety is studied in the molecules H3 N(NH2 BH2 )3-m (CH2 CH2 )m BH3 (for m=0, 1, 2, or 3) and H3 N(NH2 BH2 )2-m (CH2 CH2 )m BH3 (for m=0, 1, or 2). The DFT and Car-Parrinello simulations show that the isosteres of the BN/CC butanes CH3 CH2 BH2 NH3 , BH3 CH2 NH2 CH3 , and NH3 CH2 BH2 CH3 and of larger oligomers of the type (BN)k (CC)l where k≥l are stable compounds. The BN/CC butane H3 NCH2 CH2 BH3 spontaneously produces molecular hydrogen at room temperature. The reaction, prompted by very strong dihydrogen bonding NH⋅⋅⋅HB, undergoes through the neutral, hypervalent, pentacoordinated boron dihydrogen complex RBH2 (H2 ) [R=(CH2 CH2 )n NH2 ]. The calculations suggest that such intermediate and the other BN/CC butanes CH3 CH2 BH2 NH3 , BH3 CH2 NH2 CH3 , and NH3 CH2 BH2 CH3 as well as larger BN/CC oligomers are viable experimentally. A simple recipe for the synthesis of CH3 CH2 BH2 NH3 is proposed. The strength of the dihydrogen bonding appeared to be crucial for the overall stability of the saturated BN/CC derivatives.
在本研究中,基于静态密度泛函理论(DFT)和卡-帕里尼罗分子动力学模拟,对烷烃的无机类似物及其连接有机化学和无机化学鸿沟的等电子体BN/CC类似物进行了比较研究。考虑了BN/CC丁烷CH₃CH₂BH₂NH₃、BH₃CH₂NH₂CH₃和NH₃CH₂BH₂CH₃,并将它们与其等电子体NH₃BH₂NH₂BH₃和CH₃CH₂CH₂CH₃进行比较。此外,还研究了在分子H₃N(NH₂BH₂)₃₋ₘ(CH₂CH₂)ₘBH₃(m = 0、1、2或3)和H₃N(NH₂BH₂)₂₋ₘ(CH₂CH₂)ₘBH₃(m = 0、1或2)中,用等电子体CH₂CH₂部分系统取代NH₂BH₂片段的情况。DFT和卡-帕里尼罗模拟表明,BN/CC丁烷CH₃CH₂BH₂NH₃、BH₃CH₂NH₂CH₃和NH₃CH₂BH₂CH₃以及(k≥l)型较大低聚物(BN)ₖ(CC)ₗ的等电子体是稳定的化合物。BN/CC丁烷H₃NCH₂CH₂BH₃在室温下会自发产生分子氢。该反应由非常强的双氢键NH⋅⋅⋅HB引发,通过中性、超价、五配位硼二氢络合物RBH₂(H₂) [R = (CH₂CH₂)ₙNH₂]进行。计算结果表明,这种中间体以及其他BN/CC丁烷CH₃CH₂BH₂NH₃, BH₃CH₂NH₂CH₃和NH₃CH₂BH₂CH₃以及更大的BN/CC低聚物在实验上是可行的。提出了一种合成CH₃CH₂BH₂NH₃的简单方法。双氢键的强度似乎对饱和BN/CC衍生物的整体稳定性至关重要。