4.8 Article

Three-dimensional quantum Hall effect and metal-insulator transition in ZrTe5

期刊

NATURE
卷 569, 期 7757, 页码 537-+

出版社

NATURE PUBLISHING GROUP
DOI: 10.1038/s41586-019-1180-9

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资金

  1. Guangdong Innovative and Entrepreneurial Research Team Program [2016ZT06D348]
  2. NNSFC [11474265, 11874193]
  3. Shenzhen Fundamental Subject Research Program [JCYJ20170817110751776]
  4. Innovation Commission of Shenzhen Municipality [KQTD2016022619565991]
  5. National Key R&D Program of China [2016YFA0301700]
  6. Anhui Initiative in Quantum Information Technologies [AHY170000]
  7. Office of Basic Energy Sciences, US Department of Energy [DE-SC0012704]
  8. National Science Foundation [DMR-1442366, DMR-1644779]
  9. US Department of Energy Basic Energy Sciences [DE-FG02-03-ER46076]
  10. Singapore Ministry of Education AcRF Tier 2 [MOE2015-T2-2-144]

向作者/读者索取更多资源

The discovery of the quantum Hall effect (QHE)(1,2) in two-dimensional electronic systems has given topology a central role in condensed matter physics. Although the possibility of generalizing the QHE to three-dimensional (3D) electronic systems(3,4) was proposed decades ago, it has not been demonstrated experimentally. Here we report the experimental realization of the 3D QHE in bulk zirconium pentatelluride (ZrTe5) crystals. We perform low-temperature electric-transport measurements on bulk ZrTe5 crystals under a magnetic field and achieve the extreme quantum limit, where only the lowest Landau level is occupied, at relatively low magnetic fields. In this regime, we observe a dissipationless longitudinal resistivity close to zero, accompanied by a well-developed Hall resistivity plateau proportional to half of the Fermi wavelength along the field direction. This response is the signature of the 3D QHE and strongly suggests a Fermi surface instability driven by enhanced interaction effects in the extreme quantum limit. By further increasing the magnetic field, both the longitudinal and Hall resistivity increase considerably and display a metal-insulator transition, which represents another magnetic-field-driven quantum phase transition. Our findings provide experimental evidence of the 3D QHE and a promising platform for further exploration of exotic quantum phases and transitions in 3D systems.

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