Chiral Floquet engineering on topological fermions in chiral crystals

IF 5.4 1区 物理与天体物理 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Benshu Fan, Wenhui Duan, Angel Rubio, Peizhe Tang
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引用次数: 0

Abstract

The interplay of chiralities in light and quantum matter provides an opportunity to design and manipulate chirality-dependent properties in quantum materials. Herein we report the chirality-dependent Floquet engineering on topological fermions with the high Chern number in chiral crystal CoSi via circularly polarized light (CPL) pumping. Intense light pumping does not compromise the gapless nature of topological fermions in CoSi, but displaces the crossing points in momentum space along the direction of light propagation. The Floquet chirality index is proposed to signify the interplay between the chiralities of topological fermion, crystal, and incident light, which determines the amplitudes and directions of light-induced momentum shifts. Regarding the time-reversal symmetry breaking induced by the CPL pumping, momentum shifts of topological fermions result in the birth of transient anomalous Hall signals in non-magnetic CoSi within an ultrafast time scale, which Mid-infrared (IR) pumping and terahertz (THz) Kerr or Faraday probe spectroscopy could experimentally detect. Our findings provide insights into exploring novel applications in optoelectronic devices by leveraging the degree of freedom of chirality in the non-equilibrium regime.

Abstract Image

手性晶体中拓扑费米子的手性Floquet工程
光和量子物质中手性的相互作用为设计和操纵量子材料中的手性相关性质提供了机会。本文报道了利用圆偏振光(CPL)抽运手性晶体CoSi中具有高Chern数的拓扑费米子的手性依赖Floquet工程。强光抽运不会破坏CoSi中拓扑费米子的无间隙特性,但会沿光传播方向置换动量空间中的交叉点。提出了Floquet手性指数来表示拓扑费米子、晶体和入射光的手性之间的相互作用,它决定了光诱导动量位移的幅度和方向。对于CPL抽运引起的时间反转对称性破缺,拓扑费米子的动量位移导致非磁性CoSi在超快时间尺度内产生瞬态异常霍尔信号,中红外抽运和太赫兹克尔或法拉第探测光谱可以实验检测到这些信号。我们的研究结果通过利用非平衡状态下的手性自由度,为探索光电子器件中的新应用提供了见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
npj Quantum Materials
npj Quantum Materials Materials Science-Electronic, Optical and Magnetic Materials
CiteScore
10.60
自引率
3.50%
发文量
107
审稿时长
6 weeks
期刊介绍: npj Quantum Materials is an open access journal that publishes works that significantly advance the understanding of quantum materials, including their fundamental properties, fabrication and applications.
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