College of Physics and Optoelectronic Engineering, Shenzhen University, Shenzhen 518060, China.
National Laboratory of Solid State Microstructures and Department of Physics, Nanjing University, Nanjing 210093, China.
Phys Rev Lett. 2023 Jan 20;130(3):036202. doi: 10.1103/PhysRevLett.130.036202.
In time-reversal invariant systems, all charge Hall effects predicted so far are extrinsic effects due to the dependence on the relaxation time. We explore intrinsic Hall signatures by studying the quantum noise spectrum of the Hall current in time-reversal invariant systems, and discover intrinsic thermal Hall noises in both linear and nonlinear regimes. As the band geometric characteristics, quantum geometric tensor and Berry curvature play critical roles in various Hall effects; so do their quantum fluctuations. It is found that the thermal Hall noise in linear order of the electric field is purely intrinsic, and the second-order thermal Hall noise has both intrinsic and extrinsic contributions. In particular, the intrinsic part of the second-order thermal Hall noise is a manifestation of the quantum fluctuation of the quantum geometric tensor, which widely exists as long as Berry curvature is nonzero. These intrinsic thermal Hall noises provide direct measurable means to band geometric information, including Berry curvature related quantities and quantum fluctuation of quantum geometric tensor.
在时间反演不变系统中,迄今为止预测的所有电荷霍尔效应都是由于依赖弛豫时间而产生的外在效应。我们通过研究时间反演不变系统中霍尔电流的量子噪声谱来探索内在的霍尔信号,并在线性和非线性范围内发现了内在的热霍尔噪声。由于能带几何特征、量子几何张量和 Berry 曲率在各种霍尔效应中起着关键作用,因此它们的量子涨落也起着关键作用。结果表明,电场线性阶的热霍尔噪声完全是内在的,二阶热霍尔噪声既有内在的也有外在的贡献。特别是,二阶热霍尔噪声的内在部分是量子几何张量量子涨落的一种表现,只要 Berry 曲率不为零,这种量子涨落就广泛存在。这些内在的热霍尔噪声为能带几何信息提供了直接的可测量手段,包括 Berry 曲率相关量和量子几何张量的量子涨落。