Department of Chemistry, Yale University, New Haven, Connecticut 06520, United States.
J Am Chem Soc. 2023 Jan 11;145(1):377-384. doi: 10.1021/jacs.2c10170. Epub 2022 Dec 27.
Vibrational strong coupling (VSC) provides a novel means to modify chemical reactions and energy transfer pathways. To efficiently model chemical dynamics under VSC in the collective regime, herein a hybrid quantum mechanical/molecular mechanical (QM/MM) cavity molecular dynamics (CavMD) scheme is developed and applied to an experimentally studied chemical system. This approach can achieve linear scaling with respect to the number of molecules for a dilute solution under VSC by assuming that each QM solute molecule is surrounded by an independent MM solvent bath. Application of this approach to a dilute solution of Fe(CO) in -dodecane under VSC demonstrates polariton dephasing to the dark modes and polariton-enhanced molecular nonlinear absorption. These simulations predict that strongly exciting the lower polariton may provide an energy transfer pathway that selectively excites the equatorial CO vibrations rather than the axial CO vibrations. Moreover, these simulations also directly probe the cavity effect on the dynamics of the Fe(CO) Berry pseudorotation reaction for comparison to recent two-dimensional infrared spectroscopy experiments. This theoretical approach is applicable to a wide range of other polaritonic systems and provides a tool for exploring the use of VSC for selective infrared photochemistry.
振动强耦合(VSC)为改变化学反应和能量转移途径提供了一种新的方法。为了在集体态下有效地模拟 VSC 下的化学动力学,本文开发并应用了一种混合量子力学/分子力学(QM/MM)腔分子动力学(CavMD)方案来研究一个实验研究的化学系统。通过假设每个 QM 溶质分子都被独立的 MM 溶剂浴包围,该方法可以对 VSC 下的稀溶液实现与分子数量呈线性比例的计算。将该方法应用于 VSC 下的 -十二烷中 Fe(CO)的稀溶液中,证明了极化激元退相到暗模式和极化激元增强的分子非线性吸收。这些模拟预测,强烈激发低极化激元可能提供一种能量转移途径,选择性地激发赤道 CO 振动而不是轴向 CO 振动。此外,这些模拟还直接探测了腔对 Fe(CO)贝里赝旋转反应动力学的影响,以便与最近的二维红外光谱实验进行比较。这种理论方法适用于广泛的其他极化激元系统,并为探索 VSC 用于选择性红外光化学提供了一种工具。