Erhardt Jonas, Schmitt Cedric, Eck Philipp, Schmitt Matthias, Keßler Philipp, Lee Kyungchan, Kim Timur, Cacho Cephise, Cojocariu Iulia, Baranowski Daniel, Feyer Vitaliy, Veyrat Louis, Sangiovanni Giorgio, Claessen Ralph, Moser Simon
Physikalisches Institut, Universität Würzburg, D-97074 Würzburg, Germany.
Würzburg-Dresden Cluster of Excellence ct.qmat, Universität Würzburg, D-97074 Würzburg, Germany.
Phys Rev Lett. 2024 May 10;132(19):196401. doi: 10.1103/PhysRevLett.132.196401.
The demonstration of a topological band inversion constitutes the most elementary proof of a quantum spin Hall insulator (QSHI). On a fundamental level, such an inverted band gap is intrinsically related to the bulk Berry curvature, a gauge-invariant fingerprint of the wave function's quantum geometric properties in Hilbert space. Intimately tied to orbital angular momentum (OAM), the Berry curvature can be, in principle, extracted from circular dichroism in angle-resolved photoemission spectroscopy (CD-ARPES), were it not for interfering final state photoelectron emission channels that obscure the initial state OAM signature. Here, we outline a full-experimental strategy to avoid such interference artifacts and isolate the clean OAM from the CD-ARPES response. Bench-marking this strategy for the recently discovered atomic monolayer system indenene, we demonstrate its distinct QSHI character and establish CD-ARPES as a scalable bulk probe to experimentally classify the topology of two-dimensional quantum materials with time reversal symmetry.
拓扑能带反转的证明构成了量子自旋霍尔绝缘体(QSHI)最基本的证据。从根本层面上讲,这种反转带隙与体贝里曲率内在相关,体贝里曲率是希尔伯特空间中波函数量子几何性质的规范不变指纹。贝里曲率与轨道角动量(OAM)紧密相关,原则上,可以从角分辨光电子能谱中的圆二色性(CD-ARPES)中提取,若不是由于干扰的末态光电子发射通道掩盖了初态OAM特征的话。在此,我们概述了一种完整的实验策略,以避免此类干扰伪像,并从CD-ARPES响应中分离出纯净的OAM。我们以最近发现的原子单层体系茚为例对该策略进行基准测试,证明了其独特的QSHI特性,并确立了CD-ARPES作为一种可扩展的体探针,用于通过实验对具有时间反演对称性的二维量子材料的拓扑结构进行分类。