Enhancing intrinsic spin Hall effect: insights into chiral crystals and topological materials.

Ali Dehghan, Jiali Chen, Wei Jiang
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Abstract

This review presents a comprehensive analysis of recent advances in enhancing the intrinsic spin Hall effect (SHE) in emergent quantum materials, including chiral crystals and topological materials, by leveraging their shared symmetry-breaking features and spin-orbit coupling (SOC)-driven phenomena. The SHE, a transformative mechanism for magnetic-field-free charge-to-spin interconversion, lies at the heart of energy-efficient spintronics. Chiral crystals, with their inherent structural handedness and broken inversion symmetry, synergize with topological materials-such as Weyl semimetals and insulators-to amplify SHE through distinct yet complementary mechanisms. These include chiral spin textures, Weyl/Dirac fermions, band-inversion-induced Berry curvature hotspots, and protected surface or hinge states, all governed by strong SOC and unique spin-momentum locking. We systematically analyze how the interplay of symmetry, topology, and electronic structure in these materials creates unprecedented opportunities for SHE enhancement, supported by breakthroughs in computational design (e.g.ab initioBerry curvature engineering) and experimental strategies such as strain, alloying, and heterostructuring. Critical challenges, including the SOC-diffusion length trade-off and the need to harness magnetic or low-symmetry phases, are discussed in the context of material optimization. By unifying insights from chiral and topological systems, this review charts a roadmap for transcending conventional spin current generation paradigms and advancing scalable spintronic technologies.

增强本征自旋霍尔效应:对手性晶体和拓扑材料的见解。
本文综述了近年来利用手性晶体和拓扑材料的对称性破缺特性和自旋轨道耦合(SOC)驱动现象来增强新兴量子材料(包括手性晶体和拓扑材料)的本征自旋霍尔效应(SHE)的研究进展。SHE是一种无磁场电荷-自旋相互转换的变革性机制,是节能自旋电子学的核心。手性晶体具有固有的结构手性和逆对称性,与拓扑材料(如Weyl半金属和绝缘体)协同作用,通过不同但互补的机制来放大SHE。这些包括手性自旋织构,Weyl/Dirac费米子,带反转诱导的Berry曲率热点,以及受保护的表面或铰链状态,所有这些都由强SOC和独特的自旋动量锁定控制。我们系统地分析了这些材料中对称性、拓扑结构和电子结构的相互作用如何在计算设计(例如从头算Berry曲率工程)和应变、合金化和异质结构等实验策略的突破的支持下,为SHE增强创造了前所未有的机会。在材料优化的背景下,讨论了关键挑战,包括soc -扩散长度权衡和利用磁性或低对称相的需要。通过统一手性和拓扑系统的见解,本文概述了超越传统自旋电流产生范式和推进可扩展自旋电子技术的路线图。
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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