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Nonreciprocal current from electron interactions in noncentrosymmetric crystals: roles of time reversal symmetry and dissipation

机译:非中心对称晶体中电子相互作用的不可逆电流:时间反转对称性和耗散的作用

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摘要

In noncentrosymmetric crystals with broken inversion symmetry >ℐ, the I-V (I: current, V: voltage) characteristic is generally expected to depend on the direction of I, which is known as nonreciprocal response and, for example, found in p-n junction. However, it is a highly nontrivial issue in translationally invariant systems since the time-reversal symmetry T plays an essential role, where the two states at crystal momenta k and −k are connected in the band structure. Therefore, it has been considered that the external magnetic field (B) or the magnetic order which breaks the T-symmetry is necessary to realize the nonreciprocal I-V characteristics, i.e., magnetochiral anisotropy. Here we theoretically show that the electron correlation in T-broken multi-band systems can induce nonreciprocal I-V characteristics without T-breaking. An analog of Onsager’s relation shows that nonreciprocal current response without T -breaking generally requires two effects: dissipation and interactions. By using nonequilibrium Green’s functions, we derive general formula of the nonreciprocal response for two-band systems with onsite interaction. The formula is applied to Rice-Mele model, a representative 1D model with inversion breaking, and some candidate materials are discussed. This finding offers a coherent understanding of the origin of nonreciprocal I-V characteristics, and will pave a way to design it.
机译:在具有反转反转对称性>ℐ的非中心对称晶体中,通常期望IV(I:电流,V:电压)特性取决于I的方向,这称为不可逆响应,例如,在pn结中发现。然而,这在平移不变的系统中是一个非常重要的问题,因为时间反转对称性T起着至关重要的作用,其中晶体动量k和-k的两个状态在能带结构中相连。因此,已经考虑到需要打破T对称性的外部磁场(B)或磁阶来实现不可逆的I-V特性,即磁极各向异性。在这里,我们从理论上证明,在T断裂的多频带系统中,电子相关性可以诱发不可逆的I-V特性,而不会发生T断裂。 Onsager关系的类似物表明,没有T断裂的不可逆电流响应通常需要两个作用:耗散和相互作用。通过使用非平衡格林函数,我们得出了具有现场交互作用的两波段系统的不可逆响应的一般公式。该公式适用于Rice-Mele模型,具有代表性的一维反演破裂模型,并讨论了一些候选材料。这一发现为不可逆的I-V特性的起源提供了连贯的理解,并将为它的设计铺平道路。

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