论文标题

任意媒体中截短的量子光 - 物质相互作用的规格不变理论

Gauge-invariant theory of truncated quantum light-matter interactions in arbitrary media

论文作者

Gustin, Chris, Franke, Sebastian, Hughes, Stephen

论文摘要

材料和光子空间截断引起的光 - 物质相互作用模型中量规不变性的损失可能会对传统的量子光学模型构成重大挑战。在结构化的光子环境中,实际上需要实现强光耦合,还需要在介质内进行严格的现场量化模型。在这里,我们通过量化任意材料系统中的磁场来使用宏观QED的框架,该材料系统具有空间依赖的色散和吸收介电,从基本的光 - 介质作用开始。我们通过在规范量化过程中施加部分规格固定约束,在尊重规格原理的同时截断了材料和模式的自由度,该量规定固定限制,该规范量子承认了包括库仑和多极仪表在内的大量仪表。我们还考虑具有显式时间依赖性的仪表条件,使我们能够明确地在任何仪表上引入现象学时依赖时间的光 - 摩尔 - 含量相互作用。我们的结果允许在没有含量模棱两可的结构化光子环境中得出严格的Ultrastrong光 - 物质相互作用的模型。讨论了两级系统和偶极近似的结果,以及如何超越偶极近似的有效单粒子模型。通过与不均匀电介质的限制情况进行比较,在该情况下,可以忽略分散和吸收,并且可以根据介电的广义横向特征函数来扩展磁场,我们可以显示有损系统可以展示如何对额外的含糊不清,我们可以解决并预测对开放量化系统模型进行基本构成模型。最后,我们展示了如何通过使用简单的规格不变的光电检测模型来计算模式截断系统中的可观察到的物体。

The loss of gauge invariance in models of light-matter interaction which arises from material and photonic space truncation can pose significant challenges to conventional quantum optical models when matter and light strongly hybridize. In structured photonic environments, necessary in practice to achieve strong light-matter coupling, a rigorous model of field quantization within the medium is also needed. Here, we use the framework of macroscopic QED by quantizing the fields in an arbitrary material system, with a spatially-dependent dispersive and absorptive dielectric, starting from a fundamental light-matter action. We truncate the material and mode degrees of freedom while respecting the gauge principle by imposing a partial gauge fixing constraint during canonical quantization, which admits a large number of gauges including the Coulomb and multipolar gauges. We also consider gauge conditions with explicit time-dependence, enabling us to unambiguously introduce phenomenologically time-dependent light-matter interactions in any gauge. Our results allow one to derive rigorous models of ultrastrong light-matter interactions in structured photonic environments with no gauge ambiguity. Results for two-level systems and the dipole approximation are discussed, as well as how to go beyond the dipole approximation for effective single-particle models. By comparing with the limiting case of an inhomogeneous dielectric, where dispersion and absorption can be neglected and the fields can be expanded in terms of the generalized transverse eigenfunctions of the dielectric, we show how lossy systems can introduce an additional gauge ambiguity, which we resolve and predict to have fundamental implications for open quantum system models. Finally, we show how observables in mode-truncated systems can be calculated without ambiguity by using a simple gauge-invariant photodetection model.

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