论文标题

热活化的北极星化学中空腔泄漏和振动耗散的非平衡作用

Nonequilibrium effects of cavity leakage and vibrational dissipation in thermally-activated polariton chemistry

论文作者

Du, Matthew, Campos-Gonzalez-Angulo, Jorge A., Yuen-Zhou, Joel

论文摘要

在振动强耦合(VSC)中,分子振动与光学腔的模式强烈相互作用,形成了称为振动偏振子的杂化光物质状态。实验表明,热活化化学反应的动力学可以通过VSC修饰。过渡状态理论假设内部热化与反应性过渡相比快速,但无法解释观察到的发现。在这里,我们进行动力学模拟,以了解耗散过程,即VSC引入化学系统的过程如何影响反应,其中内部热化和反应性转变发生在相似的时间标准上。使用Marcus-Levich-Jortner类型的电子转移作为模型反应,我们表明这种耗散可以通过加速内部热化来改变反应性,从而抑制腔外反应中发生的非平衡效应。这种现象主要归因于空腔衰减(即光子泄漏),但是北极子与黑暗状态之间的放松扮演了辅助作用。当裸反应中已经抑制非平衡作用(反应物质本质上是在整个反应过程中处于内部热平衡)时,我们发现在VSC下,反应性不会显着变化。我们的结果与实验观察之间建立了联系。

In vibrational strong coupling (VSC), molecular vibrations strongly interact with the modes of an optical cavity to form hybrid light-matter states known as vibrational polaritons. Experiments show that the kinetics of thermally activated chemical reactions can be modified by VSC. Transition-state theory, which assumes that internal thermalization is fast compared to reactive transitions, has been unable to explain the observed findings. Here, we carry out kinetic simulations to understand how dissipative processes, namely those that VSC introduces to the chemical system, affect reactions where internal thermalization and reactive transitions occur on similar timescales. Using the Marcus-Levich-Jortner type of electron transfer as a model reaction, we show that such dissipation can change reactivity by accelerating internal thermalization, thereby suppressing nonequilibrium effects that occur in the reaction outside the cavity. This phenomenon is attributed mainly to cavity decay (i.e., photon leakage), but a supporting role is played by the relaxation between polaritons and dark states. When nonequilibrium effects are already suppressed in the bare reaction (the reactive species are essentially at internal thermal equilibrium throughout the reaction), we find that reactivity does not change significantly under VSC. Connections are made between our results and experimental observations.

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