Du Matthew, Yuen-Zhou Joel
Department of Chemistry and Biochemistry, University of California San Diego, La Jolla, California 92093, USA.
Phys Rev Lett. 2022 Mar 4;128(9):096001. doi: 10.1103/PhysRevLett.128.096001.
Collective strong coupling between a disordered ensemble of N localized molecular vibrations and a resonant optical cavity mode gives rise to two polariton and N-1≫2 dark modes. Thus, experimental changes in thermally activated reaction kinetics due to polariton formation appear entropically unlikely and remain a puzzle. Here we show that the overlooked dark modes, while parked at the same energy as bare molecular vibrations, are robustly delocalized across ∼2-3 molecules, yielding enhanced channels of vibrational cooling, concomitantly catalyzing a chemical reaction. As an illustration, we theoretically show an ≈50% increase in an electron transfer rate due to enhanced product stabilization. The reported effects can arise when the homogeneous linewidths of the dark modes are smaller than their energy spacings.
N个局域化分子振动的无序集合与一个共振光学腔模式之间的集体强耦合产生了两个极化激元和N - 1≫2个暗模式。因此,由于极化激元形成导致的热激活反应动力学的实验变化在熵的角度上似乎不太可能,仍然是一个谜题。在这里,我们表明,被忽视的暗模式虽然与裸分子振动处于相同能量,但能稳健地在约2 - 3个分子间离域,产生增强的振动冷却通道,同时催化化学反应。作为一个例证,我们从理论上表明,由于产物稳定性增强,电子转移速率提高了约50%。当暗模式的均匀线宽小于其能量间距时,就会出现所报道的效应。