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通过等离子体纳米腔调控非绝热动力学

Manipulating Nonadiabatic Dynamics by Plasmonic Nanocavity.

作者信息

Wang Yu, Bi Ruihao, Dou Wenjie

机构信息

Department of Chemistry, School of Science, Westlake University, Hangzhou 310024, Zhejiang, China.

Institute of Natural Sciences, Westlake Institute for Advanced Study, Hangzhou 310024, Zhejiang, China.

出版信息

J Phys Chem Lett. 2025 May 1;16(17):4139-4147. doi: 10.1021/acs.jpclett.5c00736. Epub 2025 Apr 17.

Abstract

In recent years, plasmonic nanocavities have emerged as powerful tools for controlling and enhancing light-matter interactions on the nanoscale. This study explores the role of plasmonic nanocavities in manipulating nonadiabatic dynamics, particularly in systems where fast electronic transitions are crucial. By coupling molecular states to the plasmonic resonances of metallic nanocavities, we demonstrate that the local electromagnetic fields generated by plasmons can significantly influence the rates and pathways of nonadiabatic transitions, including electron transfer and excitation relaxation processes. Using the Floquet quantum master equation (FQME) and Floquet surface hopping (FSH) methods that we previously developed, we find that plasmonic nanocavities can enhance nonadiabatic effects by tuning the plasmonic coupling strength, the molecule-metal interaction strength, and the material properties. These approaches offer a new perspective for predicting molecular dynamics in ultrafast processes. Our findings pave the way for designing novel plasmonic devices capable of controlling electron and energy transfer in chemical reactions, optoelectronic applications, and quantum information processing.

摘要

近年来,等离子体纳米腔已成为在纳米尺度上控制和增强光与物质相互作用的强大工具。本研究探讨了等离子体纳米腔在操纵非绝热动力学中的作用,特别是在快速电子跃迁至关重要的系统中。通过将分子态与金属纳米腔的等离子体共振耦合,我们证明了等离子体产生的局部电磁场可以显著影响非绝热跃迁的速率和路径,包括电子转移和激发弛豫过程。使用我们之前开发的弗洛凯量子主方程(FQME)和弗洛凯表面跳跃(FSH)方法,我们发现等离子体纳米腔可以通过调节等离子体耦合强度、分子 - 金属相互作用强度和材料特性来增强非绝热效应。这些方法为预测超快过程中的分子动力学提供了新的视角。我们的研究结果为设计能够控制化学反应、光电子应用和量子信息处理中的电子和能量转移的新型等离子体器件铺平了道路。

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