Aerts Antoine, Brown Alex, Gatti Fabien
Université Libre de Bruxelles, Spectroscopy, Quantum Chemistry and Atmospheric Remote Sensing (SQUARES), 50, Av. F. Roosevelt CP 160/09, 1050 Brussels, Belgium.
Department of Chemistry, University of Alberta, Edmonton, Alberta T6G 2G2, Canada.
J Chem Phys. 2022 Jul 7;157(1):014306. doi: 10.1063/5.0098819.
The intramolecular vibrational relaxation dynamics of formic acid and its deuterated isotopologues is simulated on the full-dimensional potential energy surface of Richter and Carbonnière [J. Chem. Phys. 148, 064303 (2018)] using the Heidelberg MCTDH package. We focus on couplings with the torsion vibrational modes close to the trans-cis isomerization coordinate from the dynamics of artificially excited vibrational mode overtones. The bright C-O stretch vibrational mode is coupled to the out-of-the plane torsion mode in HCOOH, where this coupling could be exploited for laser-induced trans-to-cis isomerization. Strong isotopic effects are observed: deuteration of the hydroxyl group, i.e., in HCOOD and DCOOD, destroys the C-O stretch to torsion mode coupling whereas in DCOOH, little to no effect is observed.
使用海德堡多组态时间相关哈特里(Heidelberg MCTDH)程序包,在Richter和Carbonnière [《化学物理杂志》148, 064303 (2018)] 的全维势能面上模拟了甲酸及其氘代同位素分子的分子内振动弛豫动力学。我们从人工激发的振动模式泛音动力学出发,关注与接近反式-顺式异构化坐标的扭转振动模式的耦合。在甲酸中,明亮的C-O伸缩振动模式与面外扭转模式耦合,这种耦合可用于激光诱导的反式-顺式异构化。观察到了强烈的同位素效应:羟基氘代,即在HCOOD和DCOOD中,破坏了C-O伸缩与扭转模式的耦合,而在DCOOH中,几乎没有观察到影响。