4.8 Article

Odd- and even-denominator fractional quantum Hall states in monolayer WSe2

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NATURE NANOTECHNOLOGY
卷 15, 期 7, 页码 569-+

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NATURE PUBLISHING GROUP
DOI: 10.1038/s41565-020-0685-6

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资金

  1. US Department of Energy [DE-SC0016703]
  2. Center for Precision Assembly of Superstratic and Superatomic Solids, a Materials Science and Engineering Research Center (MRSEC), through NSF [DMR-1420634]
  3. National Science Foundation [DMR-1157490]
  4. state of Florida
  5. EPSRC [EP/R020612/1]
  6. Elemental Strategy Initiative by the MEXT, Japan and the CREST, JST [JPMJCR15F3]
  7. U.S. Department of Energy (DOE) [DE-SC0016703] Funding Source: U.S. Department of Energy (DOE)
  8. EPSRC [EP/R020612/1] Funding Source: UKRI

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Compressibility measurements on high-quality monolayer WSe(2)samples enable the observation of fractional quantum Hall states in the lowest Landau levels. Monolayer semiconducting transition-metal dichalcogenides (TMDs) represent a unique class of two-dimensional (2D) electron systems. Their atomically thin structure facilitates gate tunability just like graphene does, but unlike graphene, TMDs have the advantage of a sizable band gap and strong spin-orbit coupling. Measurements under large magnetic fields have revealed an unusual Landau level (LL) structure(1-3), distinct from other 2D electron systems. However, owing to the limited sample quality and poor electrical contact, probing the lowest LLs has been challenging, and observation of electron correlations within the fractionally filled LL regime has not been possible. Here, through bulk electronic compressibility measurements, we investigate the LL structure of monolayer WSe(2)in the extreme quantum limit, and observe fractional quantum Hall states in the lowest three LLs. The odd-denominator fractional quantum Hall sequences demonstrate a systematic evolution with the LL orbital index, consistent with generic theoretical expectations. In addition, we observe an even-denominator state in the second LL that is expected to host non-Abelian statistics. Our results suggest that the 2D semiconductors can provide an experimental platform that closely resembles idealized theoretical models in the quantum Hall regime.

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