Gulácsi Balázs, Dóra Balázs
Department of Theoretical Physics and BME-MTA Exotic Quantum Phases Research Group, Budapest University of Technology and Economics, 1521 Budapest, Hungary.
Phys Rev Lett. 2015 Oct 16;115(16):160402. doi: 10.1103/PhysRevLett.115.160402. Epub 2015 Oct 15.
Time-periodic perturbations due to classical electromagnetic fields are useful to engineer the topological properties of matter using the Floquet theory. Here we investigate the effect of quantized electromagnetic fields by focusing on the quantized light-matter interaction on the edge state of a quantum spin Hall insulator. A Dicke-type superradiant phase transition occurs at arbitrary weak coupling, the electronic spectrum acquires a finite gap, and the resulting ground-state manifold is topological with a Chern number of ±1. When the total number of excitations is conserved, a photocurrent is generated along the edge, being pseudoquantized as ωln(1/ω) in the low-frequency limit and decaying as 1/ω for high frequencies with ω the photon frequency. The photon spectral function exhibits a clean Goldstone mode, a Higgs-like collective mode at the optical gap and the polariton continuum.
经典电磁场引起的时间周期扰动对于利用弗洛凯理论来调控物质的拓扑性质很有用。在此,我们通过聚焦量子自旋霍尔绝缘体边缘态上的量子化光与物质相互作用来研究量子化电磁场的效应。在任意弱耦合下都会发生迪克型超辐射相变,电子能谱获得有限能隙,并且所得到的基态流形是拓扑性的,陈数为±1。当激发总数守恒时,沿边缘会产生光电流,在低频极限下它被伪量子化为ωln(1/ω),在高频下随ω的增大按1/ω衰减,其中ω为光子频率。光子谱函数展现出一个清晰的戈德斯通模、在光学能隙处的类希格斯集体模以及极化激元连续区。