Abstract

When electrons are subject to a large external magnetic field, the conventional charge quantum Hall effect dictates that an electronic excitation gap is generated in the sample bulk, but metallic conduction is permitted at the boundary. Recent theoretical models suggest that certain bulk insulators with large spin–orbit interactions may also naturally support conducting topological boundary states in the quantum limit, which opens up the possibility for studying unusual quantum Hall-like phenomena in zero external magnetic fields. Bulk Bi1-xSbx single crystals are predicted to be prime candidates for one such unusual Hall phase of matter known as the topological insulator. The hallmark of a topological insulator is the existence of metallic surface states that are higher-dimensional analogues of the edge states that characterize a quantum spin Hall insulator. In addition to its interesting boundary states, the bulk of Bi1-xSbx is predicted to exhibit three-dimensional Dirac particles, another topic of heightened current interest following the new findings in two-dimensional graphene and charge quantum Hall fractionalization observed in pure bismuth. However, despite numerous transport and magnetic measurements on the Bi1-xSbx family since the 1960s, no direct evidence of either topological Hall states or bulk Dirac particles has been found. Here, using incident-photon-energy-modulated angle-resolved photoemission spectroscopy (IPEM-ARPES), we report the direct observation of massive Dirac particles in the bulk of Bi0.9Sb0.1, locate the Kramers points at the sample’s boundary and provide a comprehensive mapping of the Dirac insulator’s gapless surface electron bands. These findings taken together suggest that the observed surface state on the boundary of the bulk insulator is a realization of the ‘topological metal’. They also suggest that this material has potential application in developing next-generation quantum computing devices that may incorporate ‘light-like’ bulk carriers and spin-textured surface currents.

Keywords

Topological insulatorCondensed matter physicsPhysicsQuantum spin Hall effectQuantum Hall effectTopological orderAngle-resolved photoemission spectroscopySurface statesElectronTopology (electrical circuits)Electronic structureQuantum mechanicsQuantum

Affiliated Institutions

Related Publications

Quantum Spin Hall Effect in Graphene

We study the effects of spin orbit interactions on the low energy electronic structure of a single plane of graphene. We find that in an experimentally accessible low temperatur...

2005 Physical Review Letters 7834 citations

Publication Info

Year
2008
Type
article
Volume
452
Issue
7190
Pages
970-974
Citations
3415
Access
Closed

Social Impact

Social media, news, blog, policy document mentions

Citation Metrics

3415
OpenAlex
41
Influential
3126
CrossRef

Cite This

David Hsieh, Dong Qian, L. Andrew Wray et al. (2008). A topological Dirac insulator in a quantum spin Hall phase. Nature , 452 (7190) , 970-974. https://doi.org/10.1038/nature06843

Identifiers

DOI
10.1038/nature06843
PMID
18432240
arXiv
0902.1356

Data Quality

Data completeness: 84%