Kawabata Kohei, Shiozaki Ken, Ryu Shinsei
Department of Physics, University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-0033, Japan.
Yukawa Institute for Theoretical Physics, Kyoto University, Kyoto 606-8502, Japan.
Phys Rev Lett. 2021 May 28;126(21):216405. doi: 10.1103/PhysRevLett.126.216405.
Non-Hermiticity gives rise to unique topological phases without Hermitian analogs. However, the effective field theory has yet to be established. Here, we develop a field-theoretical description of the intrinsic non-Hermitian topological phases. Because of the dissipative and nonequilibrium nature of non-Hermiticity, our theory is formulated solely in terms of spatial degrees of freedom, which contrasts with the conventional theory defined in spacetime. Our theory provides a universal understanding of non-Hermitian topological phenomena such as the unidirectional transport in one dimension and the chiral magnetic skin effect in three dimensions. Furthermore, it systematically predicts new physics; we illustrate this by revealing transport phenomena and skin effects in two dimensions induced by a perpendicular spatial texture. From the field-theoretical perspective, the non-Hermitian skin effect, i.e., the anomalous localization due to non-Hermiticity, is shown to be a signature of an anomaly.
非厄米性会产生没有厄米类似物的独特拓扑相。然而,有效的场论尚未建立。在此,我们发展了一种关于本征非厄米拓扑相的场论描述。由于非厄米性的耗散和非平衡性质,我们的理论仅根据空间自由度来表述,这与在时空定义的传统理论形成对比。我们的理论为非厄米拓扑现象提供了一种通用的理解,比如一维中的单向输运和三维中的手征磁趋肤效应。此外,它系统地预测了新的物理现象;我们通过揭示由垂直空间纹理引起的二维输运现象和趋肤效应来说明这一点。从场论的角度来看,非厄米趋肤效应,即由于非厄米性导致的反常局域化,被证明是一种反常的标志。