4.8 Article

Electron-Beam Induced Emergence of Mesoscopic Ordering in Layered MnPS3

期刊

ACS NANO
卷 -, 期 -, 页码 -

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.2c06253

关键词

moire superlattice; two-dimensional semiconductors; metal phosphorus trichalcogenides; electron irradiation; edge plasmon; atomic defects; scanning transmission electron microscopy

资金

  1. U.S. Department of Energy (DOE), Office of Science, Basic Energy Sciences (BES), Materials Sciences and Engineering Division
  2. Oak Ridge National Laboratory's Center for Nanophase Materials Sciences (CNMS)
  3. U.S. Department of Energy, Office of Science User Facility
  4. Office of Science of the U.S. Department of Energy [AC0500OR22725]
  5. XSEDE allocation [TG-DMR200008]
  6. U.S. DOE, BES, Physical Behavior of Materials [DE-SC00023144]
  7. National Science Foundation [DMR1808964]
  8. ERC Synergy Grant [854843]
  9. National Renewable Energy Laboratories
  10. PRACE

向作者/读者索取更多资源

The formation of periodic structures induced by electron beam in multilayer materials provides a new mechanism to control plasmonic response and enable controlled periodic potentials on the atomic scale. This phenomenon offers insights into the fundamental physics of quantum materials and opens up possibilities for device applications.
Ordered mesoscale structures in 2D materials induced by small misorientations have allowed for a wide variety of electronic, ferroelectric, and quantum phenomena to be explored. Until now, the only mechanism to induce this periodic ordering was via mechanical rotations between the layers, with the periodicity of the resulting moire pattern being directly related to twist angle. Here we report a fundamentally distinct mechanism for emergence of mesoscopic periodic patterns in multilayer sulfur-containing metal phosphorus trichalcogenide, MnPS3, induced by the electron beam. The formation under the beam of periodic hexagonal patterns with several characteristic length scales, nucleation and transitions between the phases, and local dynamics are demonstrated. The associated mechanisms are attributed to the relative contraction of the layers caused by beam-induced sulfur vacancy formation with subsequent ordering and lattice parameter change. As a result, the plasmonic response of the system is locally altered, suggesting an element of control over plasmon resonances by electron beam patterning. We pose that harnessing this phenomenon provides both insight into fundamental physics of quantum materials and enables device applications by enabling controlled periodic potentials on the atomic scale.

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