论文标题

空腔量子电动力学中的游离电子气

The Free Electron Gas in Cavity Quantum Electrodynamics

论文作者

Rokaj, Vasil, Ruggenthaler, Michael, Eich, Florian G., Rubio, Angel

论文摘要

材料特性和现象的腔体修饰是一个新的研究领域,主要是由强光相互作用的进步所激发的。尽管取得了这种进展,但仍无法与光子场密切相关的扩展系统的精确解决方案,理论和实验都主要依赖于有限的系统模型。因此,一个范式可以解决的范围扩展系统的范式示例变得非常需要。为了填补这一空白,我们重新访问了Sommerfeld对空腔量子电动力学中的游离电子气体的理论(QED)。我们以任意数量的非相互作用电子的长波长极限分析地解决该系统,我们证明了电子 - 光子基态是一种含有虚拟光子的费米液体。与有限系统的模型相反,如果省略了diamagentic $ \ textbf {a}^2 $项,则不存在基本状态。此外,通过执行线性响应,我们表明腔场诱导了等离子​​体 - 孔子激发并修改电子气体的光学和直流电导率。我们的精确解决方案使我们能够通过构建有效的量子场理论来考虑电子和光子的热力学极限。模式的连续性导致电子质量的多体重新归一化,从而改变了费米液体的费米克式准粒子激发和相互作用的电子气体的wigner-seitz半径。最后,我们展示了物质修饰的光子场如何导致排斥的casimir力以及模式的连续体如何将耗散引入光质体系统。一些提出的发现应在实验上可以访问。

Cavity modification of material properties and phenomena is a novel research field largely motivated by the advances in strong light-matter interactions. Despite this progress, exact solutions for extended systems strongly coupled to the photon field are not available, and both theory and experiments rely mainly on finite-system models. Therefore a paradigmatic example of an exactly solvable extended system in a cavity becomes highly desireable. To fill this gap we revisit Sommerfeld's theory of the free electron gas in cavity quantum electrodynamics (QED). We solve this system analytically in the long-wavelength limit for an arbitrary number of non-interacting electrons, and we demonstrate that the electron-photon ground state is a Fermi liquid which contains virtual photons. In contrast to models of finite systems, no ground state exists if the diamagentic $\textbf{A}^2$ term is omitted. Further, by performing linear response we show that the cavity field induces plasmon-polariton excitations and modifies the optical and the DC conductivity of the electron gas. Our exact solution allows us to consider the thermodynamic limit for both electrons and photons by constructing an effective quantum field theory. The continuum of modes leads to a many-body renormalization of the electron mass, which modifies the fermionic quasiparticle excitations of the Fermi liquid and the Wigner-Seitz radius of the interacting electron gas. Lastly, we show how the matter-modified photon field leads to a repulsive Casimir force and how the continuum of modes introduces dissipation into the light-matter system. Several of the presented findings should be experimentally accessible.

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