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Light-Driven Extremely Nonlinear Bulk Photogalvanic Currents

机译:光驱动极其非线性散装光致常客电流

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摘要

We predict the generation of bulk photocurrents in materials driven by bichromatic fields that arc circularly polarized and corotating. The nonlinear photocurrents have a fully controllable directionality and amplitude without requiring carrier-envelope-phase stabilization or few-cycle pulses, and can be generated with photon energies much smaller than the band gap (reducing heating in the photoconversion process). We demonstrate with ab initio calculations that the photocurrent generation mechanism is universal and arises in gaped materials (Si, diamond, MgO, hBN), in semimetals (graphene), and in two- and three-dimensional systems. Photocurrents are shown to rely on sub-laser-cycle asymmetries in the nonlinear response that build-up coherently from cycle to cycle as the conduction band is populated. Importantly, the photocurrents are always transverse to the major axis of the co-circular lasers regardless of the material's structure and orientation (analogously to a Hall current), which we find originates from a generalized time-reversal symmetry in the driven system. At high laser powers (similar to 10(13) W/cm(2)) this symmetry can be spontaneously broken by vast electronic excitations, which is accompanied by an onset of carrier-envelope-phase sensitivity and ultrafast many-body effects. Our results are directly applicable for efficient light-driven control of electronics, and for enhancing sub-band-gap bulk photogalvanic effects.
机译:我们预测由电弧圆极化和卡定量驱动的材料驱动的材料中散装光电流的产生。非线性光电流具有完全可控的方向性和幅度,而不需要载体包络相位稳定或几循环脉冲,并且可以用小于带隙的光子能量产生(在光电转换过程中减少加热)。我们展示了AB初始计算,即光电流产生机制是通用的,并且在半型(石墨烯)和两维系统中,在半型材料(Si,Diamond,MgO,HBN)中出现差距材料(Si,Diamond,MgO,HBN)。当引导带填充时,光电流显示在非线性响应中依赖于非线性响应中的副激光循环不对称,其在循环中与循环结合。重要的是,无论材料的结构和方向(类似于霍尔电流),光电流始终横向于共圆激光器的主轴,我们发现来自驱动系统中的广义时间反转对称。在高激光功率(类似于10(13)W / cm(2)),可以通过广大的电子激发自发地破坏该对称性,其伴随着载体包络相位敏感性和超快许多效应的开始。我们的结果可直接适用于电子设备的有效光电控制,以及增强亚带间隙散装光致光致效应。

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  • 来源
    《Physical review letters》 |2021年第12期|126601.1-126601.7|共7页
  • 作者单位

    Max Planck Inst Struct & Dynam Matter D-22761 Hamburg Germany|Ctr Free Electron Laser Sci D-22761 Hamburg Germany;

    Max Planck Inst Struct & Dynam Matter D-22761 Hamburg Germany|Ctr Free Electron Laser Sci D-22761 Hamburg Germany;

    Max Planck Inst Struct & Dynam Matter D-22761 Hamburg Germany|Ctr Free Electron Laser Sci D-22761 Hamburg Germany|IKERBASQUE Basque Fdn Sci E-48011 Bilbao Spain|Univ Pais Vasco UPV EHU Nanobio Spect Grp San Sebastian 20018 Spain;

    Max Planck Inst Struct & Dynam Matter D-22761 Hamburg Germany|Ctr Free Electron Laser Sci D-22761 Hamburg Germany;

    Max Planck Inst Struct & Dynam Matter D-22761 Hamburg Germany|Ctr Free Electron Laser Sci D-22761 Hamburg Germany|Flatiron Inst Ctr Computat Quantum Phys CCQ New York NY 10010 USA|Univ Pais Vasco UPV EHU Nanobio Spect Grp San Sebastian 20018 Spain;

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