论文标题

在紧密结合模型中的电磁耦合,以实现密切相关的光与物质

Electromagnetic coupling in tight-binding models for strongly correlated light and matter

论文作者

Li, Jiajun, Golez, Denis, Mazza, Giacomo, Millis, Andrew, Georges, Antoine, Eckstein, Martin

论文摘要

我们讨论了低能量紧密结合的汉密尔顿人的凝结物质系统的构建,并与量子电磁场相连。可以通过将连续理论投射到给定的一组避风息轨道上来获得这种哈密致命。然而,连续理论的不同表示会导致不同的低能表述,因为不同的表示可能纠缠着光与物质,将轨道转变为投影前的光含量混合状态。特别是,多中心的功率 - Zienau-woolley变换产生了偶极的汉密尔顿二极管,该偶极性汉密尔顿型通过PEIERLS相和极化密度结合了光结合。我们比较了该偶极量规的哈密顿量和直接的库仑量表哈密顿量的一维固体,以描述在半经典极限中的亚周期光驱动的电子运动,以及将固体与量化的腔模式耦合,从而将带有电子极线体带的频段结构重新学化。当考虑到许多频段时,这两个描述都会产生相同的结果,但是当模型仅限于几个电子带时,偶极汉密尔顿二极管更为准确,而库仑汉密尔顿的辅助模式则需要更少的电磁模式。

We discuss the construction of low-energy tight-binding Hamiltonians for condensed matter systems with a strong coupling to the quantum electromagnetic field. Such Hamiltonians can be obtained by projecting the continuum theory on a given set of Wannier orbitals. However, different representations of the continuum theory lead to different low-energy formulations, because different representations may entangle light and matter, transforming orbitals into light-matter hybrid states before the projection. In particular, a multi-center Power-Zienau-Woolley transformation yields a dipolar Hamiltonian which incorporates the light-matter coupling via both Peierls phases and a polarization density. We compare this dipolar gauge Hamiltonian and the straightforward Coulomb gauge Hamiltonian for a one-dimensional solid, to describe sub-cycle light-driven electronic motion in the semiclassical limit, and a coupling of the solid to a quantized cavity mode which renormalizes the band-structure into electron-polariton bands. Both descriptions yield the same result when many bands are taken into account, but the dipolar Hamiltonian is more accurate when the model is restricted to few electronic bands, while the Coulomb Hamiltonian requires fewer electromagnetic modes.

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