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拓扑半金属表面态的输运特性

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拓扑电子体系是近年来凝聚态物理学的研究前沿,它以非平庸的体态拓扑以及奇异的表面态为主要特征.输运测量是研究拓扑电子体系最常用和最有效的手段之一,输运研究与新奇物理效应的探索以及电子器件相关应用都有密切的联系.基于拓扑绝缘体的输运研究已经广泛地开展,其中的输运信号仅由拓扑表面态贡献;而拓扑半金属中体态和表面态共存,这在给输运研究带来复杂性的同时,也预示着更为丰富的物理现象有望被发现.大多数针对拓扑半金属输运性质的研究集中于其体态,而其表面态的贡献通常被认为小到可以忽略.需要指出,通过巧妙构筑输运器件结构,表面态可以贡献很强的输运信号并导致新奇而丰富的输运性质.本文介绍了若干典型拓扑半金属体系中表面态导致的新奇输运性质,包括拓扑节线半金属中鼓面表面态导致的共振自旋翻转反射及其输运信号,外尔半金属中费米弧表面态的奇异安德烈夫反射、法布里.珀罗干涉和门电压调控的栗弗席兹相变,以及这些效应对外场的奇特响应.本文介绍的研究成果为拓扑半金属表面态的探测与调控提供了新的思路.
Transport properties of surface states in topological semimetals
Topological materials,characterized by non-trivial bulk topology and exotic surface states,have attracted tremendous research interest in recent years.Transport measurement is one of the most common and effective methods for studying topological electronic systems,which is closely related to the exploration of novel physical phenomena and the application of electronic devices.Transport studies based on topological insulators have been widely conducted,where the transport signal is contributed solely by the topological surface states.However,in topological semimetals,both bulk and surface states coexist,which brings complexity to transport studies but also suggests that more diverse physical phenomena can be discovered.Most of the research on the transport properties of topological semimetals has focused on their bulk states,and the contribution of their surface states is usually considered to be negligible.This review introduces several novel transport properties caused by surface states in typical topological semimetal systems,including(1)resonant spin-flip reflection and its transport signal induced by drumhead surface states in topological nodal-line semimetals and(2)peculiar transport properties of Fermi arc surface states in Weyl semimetals and their responses to external fields.Drumhead surface states in nodal-line semimetals are a set of bound states surrounded by the projection of the nodal loop.In nodal-line semimetals with spin-orbit coupling,the spin-polarized drumhead surface states correspond to the resonant spin-flip reflection process at the interface between normal metal and nodal-line semimetal.By solving the scattering process at the interface of the heterojunction within the nodal loop,the probability spectrum of spin-flip reflection shows a sharp resonance peak near zero energy.By injecting spin-polarized electrons from a ferromagnetic electrode into the heterojunction between normal metal and nodal-line semimetal,electrons can undergo spin-flip reflection at the interface,resulting in a nearly pure spin current near the resonance energy.Moreover,the charge flow between two antiparallel ferromagnets can also reflect the resonant spin-polarized reflection process of the electrons,which manifests as a resonance peak in the differential conductance.The subsequent mechanism explores a series of transport signatures of Fermi arc surface states in Weyl semimetals.The discontinuous shape of the Fermi arc in the surface Brillouin zone of Weyl semimetals,as well as the chiral Landau levels inside the Weyl semimetal under external magnetic fields,can be utilized to design devices that realize special Andreev reflection and Fabry-Perot interference mechanisms.By designing suitable surface transport devices,such mechanisms can be detected as specific electrical signals in the conductivity spectrum,providing an effective criterion for the detection of Fermi arc surface states.These devices can also provide measurement schemes for Fermi arc Lifshitz transitions,which are reflected in special response of conductance spectra to magnetic field.To summarize,research introduced in this review enhances our understanding of topological semimetal materials and opens new avenues for detecting and manipulating topological surface states.In addition,studying the transport measurements of surface states in topological semimetals will also contribute to the design of novel quantum devices.

nodal-line semimetalWeyl semimetalsurface statesFermi arcquantum transport

郑悦、陈伟

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南京大学物理学院,固体微结构物理国家重点实验室,南京 210093

人工微结构科学与技术协同创新中心,南京 210093

节线半金属 外尔半金属 表面态 费米弧 量子输运

国家自然科学基金国家自然科学基金

1207417212222406

2024

科学通报
中国科学院国家自然科学基金委员会

科学通报

CSTPCD北大核心
影响因子:1.269
ISSN:0023-074X
年,卷(期):2024.69(1)
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