4.8 Article

Dynamic band-structure tuning of graphene moire superlattices with pressure

期刊

NATURE
卷 557, 期 7705, 页码 404-+

出版社

NATURE PUBLISHING GROUP
DOI: 10.1038/s41586-018-0107-1

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资金

  1. National Science Foundation (NSF) [DMR-1462383]
  2. David and Lucille Packard foundation
  3. NSF MRSEC program through Columbia in the Center for Precision Assembly of Superstratic and Superatomic Solids [DMR-1420634]
  4. Center for Actinide Science and Technology (CAST)
  5. Energy Frontier Research Center (EFRC) - Department of Energy, Office of Science, Basic Energy Sciences [DE-SC0016568]
  6. NSF Cooperative Agreement [DMR-1157490]
  7. State of Florida
  8. US Department of Energy and additionally provided support for pressure cell development through User Collaboration Grant Program (UCGP) funding
  9. Korean NRF [NRF-2016R1A2B4010105]
  10. Korean Research Fellowship [NRF-2016H1D3A1023826]
  11. National Research Foundation of Singapore under its Fellowship program [NRF-NRFF2012-01]
  12. Singapore Ministry of Education AcRF Tier 2 [M0E2017-T2-2-140]
  13. Elemental Strategy Initiative conducted by the MEXT, Japan
  14. JSPS KAKENHI grant [JP15K21722]
  15. [NRF-2017R1D1A1B03035932]

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Heterostructures can be assembled from atomically thin materials by combining a wide range of available van der Waals crystals, providing exciting possibilities for designer electronics'. In many cases, beyond simply realizing new material combinations, interlayer interactions lead to emergent electronic properties that are fundamentally distinct from those of the constituent layers'. A critical parameter in these structures is the interlayer coupling strength, but this is often not easy to determine and is typically considered to be a fixed property of the system. Here we demonstrate that we can controllably tune the interlayer separation in van der Waals heterostructures using hydrostatic pressure, providing a dynamic way to modify their electronic properties. In devices in which graphene is encapsulated in boron nitride and aligned with one of the encapsulating layers, we observe that increasing pressure produces a superlinear increase in the moire-superlattice-induced bandgap nearly doubling within the studied range together with an increase in the capacitive gate coupling to the active channel by as much as 25 per cent. Comparison to theoretical modelling highlights the role of atomic-scale structural deformations and how this can be altered with pressure. Our results demonstrate that combining hydrostatic pressure with controlled rotational order provides opportunities for dynamic band-structure engineering in van der Waals heterostructures.

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