Schäfer Christian, Ruggenthaler Michael, Rokaj Vasil, Rubio Angel
Max Planck Institute for the Structure and Dynamics of Matter and Center for Free-Electron Laser Science & Department of Physics, Luruper Chaussee 149, 22761 Hamburg, Germany.
Nano-Bio Spectroscopy Group, Departamento de Fisica de Materiales, Universidad del País Vasco, 20018 San Sebastián, Spain.
ACS Photonics. 2020 Apr 15;7(4):975-990. doi: 10.1021/acsphotonics.9b01649. Epub 2020 Feb 26.
Experiments at the interface of quantum optics and chemistry have revealed that strong coupling between light and matter can substantially modify the chemical and physical properties of molecules and solids. While the theoretical description of such situations is usually based on nonrelativistic quantum electrodynamics, which contains quadratic light-matter coupling terms, it is commonplace to disregard these terms and restrict the treatment to purely bilinear couplings. In this work, we clarify the physical origin and the substantial impact of the most common quadratic terms, the diamagnetic and self-polarization terms, and highlight why neglecting them can lead to rather unphysical results. Specifically, we demonstrate their relevance by showing that neglecting these terms leads to the loss of gauge invariance, basis set dependence, disintegration (loss of bound states) of any system in the basis set limit, unphysical radiation of the ground state, and an artificial dependence on the static dipole. Besides providing important guidance for modeling of strongly coupled light-matter systems, the presented results also indicate conditions under which those effects might become accessible.
量子光学与化学交叉领域的实验表明,光与物质之间的强耦合能够显著改变分子和固体的化学与物理性质。虽然此类情形的理论描述通常基于非相对论量子电动力学,其中包含二次光-物质耦合项,但通常会忽略这些项,而将处理限制在纯双线性耦合上。在这项工作中,我们阐明了最常见的二次项(抗磁项和自极化项)的物理起源及其重大影响,并强调了忽略它们为何会导致相当不符合物理实际的结果。具体而言,我们通过表明忽略这些项会导致规范不变性的丧失、基组依赖性、基组极限下任何系统的解体(束缚态的丧失)、基态的非物理辐射以及对静态偶极子的人为依赖,来证明它们的相关性。除了为强耦合光-物质系统的建模提供重要指导外,所呈现的结果还指出了这些效应可能变得可及的条件。