论文标题

波导中的拓扑增强非偏射散射和光子吸收

Topology-Enhanced Nonreciprocal Scattering and Photon Absorption in a Waveguide

论文作者

Nie, Wei, Shi, Tao, Nori, Franco, Liu, Yu-xi

论文摘要

在许多系统中已经研究了拓扑问题和拓扑光学,并在材料科学和光子学技术中采用了有希望的应用。这些进步激发了研究拓扑物质与光之间的相互作用,以及光疗相互作用中的拓扑保护。 In this work, we study a waveguide-interfaced topological atom array. The light-matter interaction is nontrivially modified by topology, yielding novel optical phenomena.我们发现从波导的拓扑增强的光子吸收大型percell因子,即$γ/γ_0\ gg 1 $,其中$γ$和$γ_0$分别是波导和环境的原子衰减。为了理解这种非常规光子的吸收,我们提出了一种多通道散射方法,并研究边缘和散装状态通道的相互作用光谱。我们发现,通过打破反转和时间反向对称性,启用了光学各向异性进行反射过程,但传输是各向同性的。通过对边缘通道的扰动分析,我们表明反射过程中的各向异性起源于波导介导的非铁相互作用。 However, the inversion symmetry in the non-Hermitian interaction makes the transmission isotropic. At a topology-protected atomic spacing, the subradiant edge state exhibits huge anisotropy.由于边缘和散装状态通道之间的相互作用,大型拓扑带隙可增强波导中光子的非转化反射,以实现虚弱的时间反转对称性,即$γ_0/γ\ ll 1 $,从而产生完整的光子吸收。 We show that our proposal can be implemented in superconducting quantum circuits. The topology-enhanced photon absorption is useful for quantum detection. This work shows the potential to manipulate light with topological quantum matter.

Topological matter and topological optics have been studied in many systems, with promising applications in materials science and photonics technology. These advances motivate the study of the interaction between topological matter and light, as well as topological protection in light-matter interactions. In this work, we study a waveguide-interfaced topological atom array. The light-matter interaction is nontrivially modified by topology, yielding novel optical phenomena. We find topology-enhanced photon absorption from the waveguide for large Purcell factor, i.e., $Γ/Γ_0\gg 1$, where $Γ$ and $Γ_0$ are the atomic decays to waveguide and environment, respectively. To understand this unconventional photon absorption, we propose a multi-channel scattering approach and study the interaction spectra for edge- and bulk-state channels. We find that, by breaking inversion and time-reversal symmetries, optical anisotropy is enabled for reflection process, but the transmission is isotropic. Through a perturbation analysis of the edge-state channel, we show that the anisotropy in the reflection process originates from the waveguide-mediated non-Hermitian interaction. However, the inversion symmetry in the non-Hermitian interaction makes the transmission isotropic. At a topology-protected atomic spacing, the subradiant edge state exhibits huge anisotropy. Due to the interplay between edge- and bulk-state channels, a large topological bandgap enhances nonreciprocal reflection of photons in the waveguide for weakly broken time-reversal symmetry, i.e., $Γ_0/Γ\ll 1$, producing complete photon absorption. We show that our proposal can be implemented in superconducting quantum circuits. The topology-enhanced photon absorption is useful for quantum detection. This work shows the potential to manipulate light with topological quantum matter.

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