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Nonreciprocal responses from non-centrosymmetric quantum materials

机译:非中心对称量子材料的不可逆反应

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Directional transport and propagation of quantum particle and current, such as electron, photon, spin, and phonon, are known to occur in the materials system with broken inversion symmetry, as exemplified by the diode in semiconductor p–n junction and the natural optical activity in chiral materials. Such a nonreciprocal response in the quantum materials of noncentrosymmetry occurs ubiquitously when the time-reversal symmetry is further broken by applying a magnetic field or with spontaneous magnetization, such as the magnetochiral effect and the nonreciprocal magnon transport or spin current in chiral magnets. In the nonlinear regime responding to the square of current and electric field, even a more variety of nonreciprocal phenomena can show up, including the photocurrent of topological origin and the unidirectional magnetoresistance in polar/chiral semiconductors. Microscopically, these nonreciprocal responses in the quantum materials are frequently encoded by the quantum Berry phase, the toroidal moment, and the magnetoelectric monopole, thus cultivating the fertile ground of the functional topological materials. Here, we review the basic mechanisms and emergent phenomena and functions of the nonreciprocal responses in the noncentrosymmetric quantum materials.
机译:众所周知,量子粒子和电流(例如电子,光子,自旋和声子)的定向传输和传播会发生在具有颠倒的对称性的材料系统中,例如半导体PN结中的二极管和自然光活动在手性材料中。当通过施加磁场或自发磁化进一步破坏时间反转对称性时,非中心对称的量子材料中的这种不可逆的响应会普遍发生,例如手性磁体中的磁吸效应和不可逆的磁振子传输或自旋电流。在响应电流和电场平方的非线性机制中,甚至会出现更多种不可逆现象,包括拓扑起源的光电流和极性/手性半导体中的单向磁阻。从微观上讲,量子材料中的这些不可逆的响应通常由量子贝里相,环面矩和磁电单极子编码,从而为功能拓扑材料的沃土奠定了基础。在这里,我们回顾了非中心对称量子材料中不可逆反应的基本机理以及出现的现象和功能。

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