论文标题
光电流作为量子材料的多物理诊断
Photocurrent as a multi-physics diagnostic of quantum materials
论文作者
论文摘要
从入射光子(以及光激发电子孔对的创建)到电流的最终提取的光激发生命周期是一个复杂的多物理过程,该过程跨越了一系列量子材料的时空尺度。虽然经常通过设备技术镜头观察,但PhotoCurrent是可观察到的生命周期的关键,该生命周期对这些量表上无数的物理过程敏感。结果,光电流正在作为电子状态的多功能探针,Bloch带量子几何形状,量子动力学过程和量子材料的设备特性。这篇综述概述了光电流诊断的关键多物理原理。特别是,我们描述了光结合相互作用与量子几何形状之间的基本联系如何使光电流a波函数敏感的探针能够解析带结构并表征拓扑材料。我们进一步强调了光激发生命周期对松弛过程的敏感性,这又使光电流可以解散不同类型的载流子散射,范围从飞秒到纳米秒刻度。我们调查了光电流收集的本质非局部特征,该特征允许新型类型的遥感方案和光电流纳米镜检查。这些独特的特征强调了光电流诊断作为一种新型的多物理探针,该探针对成长类别的量子材料具有跨越多个时空尺度的物理学特性。
The photoexcitation life-cycle from incident photon (and creation of photoexcited electron hole pair) to ultimate extraction of electrical current is a complex multi-physics process spanning across a range of spatio-temporal scales of quantum materials. While often viewed through a device-technology lens, photocurrent is a key observable of the life-cycle that is sensitive to a myriad of physical processes across these scales. As a result, photocurrent is emerging as a versatile probe of electronic states, Bloch band quantum geometry, quantum kinetic processes, and device characteristics of quantum materials. This review outlines the key multi-physics principles of photocurrent diagnostics. In particular, we describe how the fundamental link between light-matter interaction and quantum geometry renders photocurrent a wavefunction-sensitive probe capable of resolving bandstructure and characterizing topological materials. We further highlight the sensitivity of the photoexcitation life-cycle to relaxational processes which in turn enables photocurrent to disentangle distinct types of carrier scattering that can range from femtosecond to nanosecond timescales. We survey the intrinsically nonlocal character of photocurrent collection that allows new types remote sensing protocols and photocurrent nanoscopy. These distinctive features underscore photocurrent diagnostics as a novel multi-physics probe for a growing class of quantum materials with properties governed by physics spanning multiple spatio-temporal scales.