Westbrook Brent R, Fortenberry Ryan C
Department of Chemistry & Biochemistry, University of Mississippi, University, MS 38677, USA.
Molecules. 2021 Dec 3;26(23):7348. doi: 10.3390/molecules26237348.
Water borane (BH3OH2) and borinic acid (BH2OH) have been proposed as intermediates along the pathway of hydrogen generation from simple reactants: water and borane. However, the vibrational spectra for neither water borane nor borinic acid has been investigaged experimentally due to the difficulty of isolating them in the gas phase, making accurate quantum chemical predictions for such properties the most viable means of their determination. This work presents theoretical predictions of the full rotational and fundamental vibrational spectra of these two potentially application-rich molecules using quartic force fields at the CCSD(T)-F12b/cc-pCVTZ-F12 level with additional corrections included for the effects of scalar relativity. This computational scheme is further benchmarked against the available gas-phase experimental data for the related borane and HBO molecules. The differences are found to be within 3 cm-1 for the fundamental vibrational frequencies and as close as 15 MHz in the B0 and C0 principal rotational constants. Both BH2OH and BH3OH2 have multiple vibrational modes with intensities greater than 100 km mol-1, namely ν2 and ν4 in BH2OH, and ν1, ν3, ν4, ν9, and ν13 in BH3OH2. Finally, BH3OH2 has a large dipole moment of 4.24 D, which should enable it to be observable by rotational spectroscopy, as well.
水合硼烷(BH₃OH₂)和硼酸(BH₂OH)被认为是由简单反应物水和硼烷产生氢气过程中的中间体。然而,由于难以在气相中分离出水合硼烷和硼酸,它们的振动光谱尚未通过实验进行研究,因此对这些性质进行精确的量子化学预测是确定它们的最可行方法。这项工作使用CCSD(T)-F12b/cc-pCVTZ-F12水平的四次力场,并包括标量相对论效应的额外校正,给出了这两种可能具有丰富应用的分子的完整转动光谱和基本振动光谱的理论预测。该计算方案进一步与相关硼烷和HBO分子的现有气相实验数据进行了基准测试。发现基本振动频率的差异在3 cm⁻¹以内,B₀和C₀主转动常数的差异接近15 MHz。BH₂OH和BH₃OH₂都有多个强度大于100 km mol⁻¹的振动模式,即BH₂OH中的ν₂和ν₄,以及BH₃OH₂中的ν₁、ν₃、ν₄、ν₉和ν₁₃。最后,BH₃OH₂具有4.24 D的大偶极矩,这也应该使其能够通过转动光谱进行观测。