论文标题

量规固定与量子光相关的强相关电子

Gauge Fixing for Strongly Correlated Electrons coupled to Quantum Light

论文作者

Dmytruk, Olesia, Schiró, Marco

论文摘要

我们讨论了量规固定与量子光耦合的强相关电子的问题,该电子通过预测的低能模型描述,例如在紧密结合方法中获得的模型。从量子光学领域的最新结果中,我们提出了一种通用方法,可以在偶极子或库仑量规上写下量子光含量的哈密顿量,该方法通过单位转换明确连接,从而确保即使在投影后也确保量规等值。投影的偶极仪量表汉密尔顿(Hamiltonian)具有线性光耦合和电子的瞬时自我相互作用,类似于完整的连续理论中的结构。另一方面,在库仑量规中,光子场以高度非线性的方式进入,这些相位因素穿着电子自由度。我们表明,我们的方法概括了众所周知的PEIERL近似值,当仅考虑局部,现场轨道对光耦合耦合时,它就会降低。作为一种应用,我们研究了一个相互作用的相互作用的两轨模型,该模型与均匀的腔模式结合,该模型最近在激子超赞和相关的无定理的背景下进行了研究。使用两个仪表,我们在基态下恢复了缺乏上级相位的相位,并表明由Polariton模式描述的刺激在其顶部含有非平凡的轻度纠缠。我们的结果强调了库仑仪非扰动的非线性光量相互作用的重要性,以获得明确定义的Ultrastrong耦合极限并不要破坏量规等效性。

We discuss the problem of gauge fixing for strongly correlated electrons coupled to quantum light, described by projected low-energy models such as those obtained within tight-binding methods. Drawing from recent results in the field of quantum optics, we present a general approach to write down quantum light-matter Hamiltonian in either dipole or Coulomb gauge which are explicitly connected by a unitary transformation, thus ensuring gauge equivalence even after projection. The projected dipole gauge Hamiltonian features a linear light-matter coupling and an instantaneous self-interaction for the electrons, similar to the structure in the full continuum theory. On the other hand, in the Coulomb gauge the photon field enters in a highly non-linear way, through phase factors that dress the electronic degrees of freedom. We show that our approach generalises the well-known Peierls approximation, to which it reduces when only local, on-site orbital contributions to light-matter coupling are taken into account. As an application, we study a two-orbital model of interacting electrons coupled to a uniform cavity mode, recently studied in the context of excitonic superradiance and associated no-go theorems. Using both gauges we recover the absence of superradiant phase in the ground state and show that excitations on top of it, described by polariton modes, contain instead non-trivial light-matter entanglement. Our results highlight the importance of treating the non-linear light-matter interaction of the Coulomb gauge non-perturbatively, to obtain a well-defined ultrastrong coupling limit and to not spoil gauge equivalence.

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