Martins João B L, Quintino Rabeshe P, Politi José R Dos S, Sethio Daniel, Gargano Ricardo, Kraka Elfi
Institute of Chemistry, University of Brasília, Brasília, DF 70910-900, Brazil.
Institute of Chemistry, University of Brasília, Brasília, DF 70910-900, Brazil.
Spectrochim Acta A Mol Biomol Spectrosc. 2020 Oct 5;239:118540. doi: 10.1016/j.saa.2020.118540. Epub 2020 May 28.
Previous studies have shown that the weakly bonded HS dimer demands high level quantum chemical calculations to reproduce experimental values. We investigated the hydrogen bonding of HS dimer using MP2 and CCSD(T) levels of theory in combination with aug-cc-pV(D,T,Q)Z basis sets. More precisely, the binding energies, potential energy curves, rovibrational spectroscopic constants, decomposition lifetime, and normal vibrational frequencies were calculated. In addition, we introduced the local mode analysis of Konkoli-Cremer to quantify the hydrogen bonding in the HS dimer as well as providing for the first time the comprehensive decomposition of normal vibrational modes into local modes contributions, and a decomposition lifetime based on rate constant. The local mode force constant of the HS dimer hydrogen bond is smaller than that of the water dimer, in accordance with the weaker hydrogen bonding in the HS dimer.
先前的研究表明,弱键合的HS二聚体需要高水平的量子化学计算才能重现实验值。我们使用MP2和CCSD(T)理论水平结合aug-cc-pV(D,T,Q)Z基组研究了HS二聚体的氢键。更确切地说,计算了结合能、势能曲线、振转光谱常数、分解寿命和正常振动频率。此外,我们引入了Konkoli-Cremer的局域模式分析来量化HS二聚体中的氢键,同时首次提供了将正常振动模式全面分解为局域模式贡献的方法,以及基于速率常数的分解寿命。HS二聚体氢键的局域模式力常数小于水二聚体的,这与HS二聚体中较弱的氢键一致。