Revealing Quantum Geometry in Nonlinear Quantum Materials.

Yiyang Jiang, Tobias Holder, Binghai Yan
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Abstract

Berry curvature-related topological phenomena have been a central topic in condensed matter physics. Yet, until recently other quantum geometric quantities such as the metric and connection received only little attention due to the relatively few effects which have been documented for them. This review gives a modern perspective how quantum geometric quantities naturally enter the nonlinear responses of quantum materials and demonstrate their deep connection with excitation energy, lifetimes, symmetry, and corresponding physical processes. The multitude of nonlinear responses can be subdivided into nonlinear optical effects, subgap responses, and nonlinear transport phenomena. Such a distinction by energy scales facilitates an intuitive understanding of the underlying electronic transitions, giving rise to a unified picture of the electron motion beyond linear order. The well-known injection and shift currents constitute the main resonances in the optical regime. Exploiting their respective lifetime and symmetry dependencies, this review elucidates how these resonances can be distinguished by a corresponding quantum geometric quantity that shares the same symmetry. This is followed by a brief exposition of the role of quasiparticle lifetimes for nonlinear subgap responses, which presents a window into the microscopic short-term dynamics as well as the ground state correlation and localization. We conclude with an account of the anomalous motion due to the Berry curvature dipole and quantum metric dipole in nonlinear transport, clarifying the correspondence between physical observables and the underlying mechanisms. This review highlights the close relationship between quantum geometry and nonlinear response, showing the way towards promising probes of quantum geometry and enabling novel avenues to characterize complex materials.

揭示非线性量子材料中的量子几何。
Berry曲率相关的拓扑现象一直是凝聚态物理中的一个中心课题。然而,直到最近,其他量子几何量,如度规和连接,只受到很少的关注,由于相对较少的影响,已经记录了它们。 ;这篇综述给出了一个现代的视角,量子几何量如何自然地进入量子材料的非线性响应,并展示了它们与激发能、寿命、对称性、和相应的物理过程。 ;大量的非线性响应可以细分为非线性光学效应、子间隙响应和非线性输运现象。 ;这种能量尺度的区分有助于直观地理解潜在的电子跃迁,从而产生一个超越线性顺序的电子运动的统一图像。 ;众所周知的注入和位移电流构成了光学体系中的主要共振。利用它们各自的寿命和对称性依赖关系,本综述阐明了如何通过具有相同对称性的相应量子几何量来区分这些共振。 ;随后简要阐述了准粒子寿命在非线性子间隙响应中的作用。这为微观短期动力学以及基态相关和局部化提供了一个窗口。我们最后解释了非线性输运中由于Berry曲率偶极子和量子度量偶极子引起的异常运动,澄清了物理观测结果与潜在机制之间的对应关系。这篇综述强调了量子几何和非线性响应之间的密切关系,为有前途的量子几何探测指明了道路,并为表征复杂材料提供了新的途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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