论文标题

从第一原理中的集体光态状态中单分子的动态

Dynamic of Single Molecules in Collective Light-Matter States from First Principles

论文作者

Schäfer, Christian

论文摘要

大量分子与常见光子模式的相干相互作用导致强烈的光结合,这一特征证明对化学非常有益,并将其称为polaritonic和QED化学。考虑复杂的显微镜化学反应与宏观数量的分子相结合,使现有的从头算方法无法实现。在这项工作中,我引入了一种简单的方法来捕获集体性质,同时保留单分子的全部效果。通过将大多数分子集合嵌入到二元绿色张量中,我们获得了整体中单个分子动态的计算便宜且直观的描述 - 这种方法似乎是极化化学的理想选择。彻底讨论了引入的嵌入辐射反应潜力,包括前景,应用和局限性。第一个应用证明了较大分子集合的一部分的单分子的线性响应。然后,由于一个简单的质子隧道模型,我说明集体强耦合对化学反应的影响具有对发射器数量的非平凡依赖性。桥接经典的电动力学,量子光学描述以及对逼真分子的摘要描述,这项工作可以作为指导光,以实现未来的发展和研究,以QED化学和QED材料设计的快速增长领域。

The coherent interaction of a large collection of molecules with a common photonic mode results in strong light-matter coupling, a feature that proved highly beneficial for chemistry and termed the research topics polaritonic and QED chemistry. Considering complex microscopic chemical reactions in combination with a macroscopic number of molecules renders existing ab initio approaches inapplicable. In this work, I introduce a simple approach to capture the collective nature while retaining the full ab initio representation of single molecules. By embedding the majority of the molecular ensemble into the dyadic Green tensor, we obtain a computationally cheap and intuitive description of the dynamic of a single molecule in the ensemble - an approach that seems ideal for polaritonic chemistry. The introduced embedding radiation-reaction potential is thoroughly discussed, including prospects, applications and limitations. A first application demonstrates the linear response of single molecules that are part of a larger ensembles of molecules. Then, by virtue of a simple proton-tunneling model, I illustrate that the influence of collective strong coupling on chemical reactions features a nontrivial dependence on the number of emitters. Bridging classical electrodynamics, quantum optical descriptions and the ab initio description of realistic molecules, this work can serve as guiding light for future developments and investigations in the quickly growing fields of QED chemistry and QED material design.

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