Quantum Hall effect based on Weyl orbits in Cd3As2
Zhang, Cheng10,11,12; Zhang, Yi13; Yuan, Xiang10,11,12; Lu, Shiheng10,11,12; Zhang, Jinglei14; Narayan, Awadhesh1; Liu, Yanwen10,11,12; Zhang, Huiqin10,11,12; Ni, Zhuoliang10,11,12; Liu, Ran10,11,12
刊名NATURE
2019-01-17
卷号565期号:7739页码:331-+
ISSN号0028-0836
DOI10.1038/s41586-018-0798-3
英文摘要

Discovered decades ago, the quantum Hall effect remains one of the most studied phenomena in condensed matter physics and is relevant for research areas such as topological phases, strong electron correlations and quantum computing(1-5). The quantized electron transport that is characteristic of the quantum Hall effect typically originates from chiral edge states-ballistic conducting channels that emerge when two-dimensional electron systems are subjected to large magnetic fields(2). However, whether the quantum Hall effect can be extended to higher dimensions without simply stacking two-dimensional systems is unknown. Here we report evidence of a new type of quantum Hall effect, based on Weyl orbits in nanostructures of the three-dimensional topological semimetal Cd3As2. The Weyl orbits consist of Fermi arcs (open arc-like surface states) on opposite surfaces of the sample connected by one-dimensional chiral Landau levels along the magnetic field through the bulk(6,7). This transport through the bulk results in an additional contribution (compared to stacked two-dimensional systems and which depends on the sample thickness) to the quantum phase of the Weyl orbit. Consequently, chiral states can emerge even in the bulk. To measure these quantum phase shifts and search for the associated chiral modes in the bulk, we conduct transport experiments using wedge-shaped Cd3As2 nanostructures with variable thickness. We find that the quantum Hall transport is strongly modulated by the sample thickness. The dependence of the Landau levels on the magnitude and direction of the magnetic field and on the sample thickness agrees with theoretical predictions based on the modified Lifshitz-Onsager relation for the Weyl orbits. Nanostructures of topological semimetals thus provide a way of exploring quantum Hall physics in three-dimensional materials with enhanced tunability.

资助项目National Natural Science Foundation of China[61322407] ; National Natural Science Foundation of China[11474058] ; National Natural Science Foundation of China[61674040] ; National Natural Science Foundation of China[11874116] ; National Natural Science Foundation of China[11574127] ; National Key Research and Development Program of China[2017YFA0303302] ; National Key Research and Development Program of China[2018YFA0305601] ; National Young 1000 Talent Plan ; NSF[DMR-1308089] ; NSF[DMR-1644779] ; NSF[DMR-1157490] ; NSF[DMR-1653007] ; Bethe fellowship at Cornell University ; Youth Innovation Promotion Association CAS[2018486] ; Users with Excellence Project of Hefei Science Center CAS[2018HSC-UE011] ; China Scholarships Council (CSC)[201706100053] ; China Scholarships Council (CSC)[201706100054] ; state of Florida ; Guangdong Innovative and Entrepreneurial Research Team Program[2016ZT06D348] ; National Key RD Program[2016YFA0301700] ; Science, Technology, and Innovation Commission of Shenzhen Municipality[ZDSYS20170303165926217] ; Science, Technology, and Innovation Commission of Shenzhen Municipality[JCYJ20170412152620376] ; ETH Zurich
WOS关键词SURFACE FERMI ARCS ; SEMIMETAL ; OSCILLATIONS ; PHASE
WOS研究方向Science & Technology - Other Topics
语种英语
出版者NATURE PUBLISHING GROUP
WOS记录号WOS:000455781600036
资助机构National Natural Science Foundation of China ; National Natural Science Foundation of China ; National Natural Science Foundation of China ; National Natural Science Foundation of China ; National Natural Science Foundation of China ; National Natural Science Foundation of China ; National Natural Science Foundation of China ; National Natural Science Foundation of China ; National Key Research and Development Program of China ; National Key Research and Development Program of China ; National Key Research and Development Program of China ; National Key Research and Development Program of China ; National Key Research and Development Program of China ; National Key Research and Development Program of China ; National Key Research and Development Program of China ; National Key Research and Development Program of China ; National Young 1000 Talent Plan ; National Young 1000 Talent Plan ; National Young 1000 Talent Plan ; National Young 1000 Talent Plan ; National Young 1000 Talent Plan ; 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内容类型期刊论文
源URL[http://ir.hfcas.ac.cn:8080/handle/334002/41451]  
专题合肥物质科学研究院_中科院强磁场科学中心
通讯作者Xiu, Faxian
作者单位1.Swiss Fed Inst Technol, Mat Theory, Zurich, Switzerland
2.Natl High Magnet Field Lab, Tallahassee, FL USA
3.Trinity Coll Dublin, Sch Phys, Dublin, Ireland
4.Trinity Coll Dublin, CRANN Inst, Dublin, Ireland
5.Southern Univ Sci & Technol, Shenzhen Inst Quantum Sci & Engn, Shenzhen, Peoples R China
6.Southern Univ Sci & Technol, Dept Phys, Shenzhen, Peoples R China
7.Shenzhen Key Lab Quantum Sci & Engn, Shenzhen, Peoples R China
8.Univ Texas Austin, Dept Phys, Austin, TX 78712 USA
9.Fudan Univ, Inst Nanoelect Devices & Quantum Comp, Shanghai, Peoples R China
10.Fudan Univ, State Key Lab Surface Phys, Shanghai, Peoples R China
推荐引用方式
GB/T 7714
Zhang, Cheng,Zhang, Yi,Yuan, Xiang,et al. Quantum Hall effect based on Weyl orbits in Cd3As2[J]. NATURE,2019,565(7739):331-+.
APA Zhang, Cheng.,Zhang, Yi.,Yuan, Xiang.,Lu, Shiheng.,Zhang, Jinglei.,...&Xiu, Faxian.(2019).Quantum Hall effect based on Weyl orbits in Cd3As2.NATURE,565(7739),331-+.
MLA Zhang, Cheng,et al."Quantum Hall effect based on Weyl orbits in Cd3As2".NATURE 565.7739(2019):331-+.
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