4.8 Article

Electronic structures and unusually robust bandgap in an ultrahigh-mobility layered oxide semiconductor, Bi2O2Se

期刊

SCIENCE ADVANCES
卷 4, 期 9, 页码 -

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AMER ASSOC ADVANCEMENT SCIENCE
DOI: 10.1126/sciadv.aat8355

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资金

  1. Engineering and Physical Sciences Research Council (UK) Platform Grant [EP/M020517/1]
  2. National Natural Science Foundation of China [11634009, 21525310, 21733001, 11674229, 11604207]
  3. National Basic Research Program of China [2014CB932500]
  4. Ruth and Herman Albert Scholars Program for New Scientists in Weizmann Institute of Science, Israel
  5. National Key R&D Program of China [2017YFA0305400]
  6. China Scholarship Council-University of Oxford Scholarship
  7. Bureau of Frontier Sciences and Education, Chinese Academy of Sciences
  8. National Science Foundation of China [11227902]
  9. National Research Foundation, Korea through the Science Research Center for Topological Matter [2011-0030787]
  10. Studienstiftung des deutschen Volkes

向作者/读者索取更多资源

Semiconductors are essential materials that affect our everyday life in the modern world. Two-dimensional semiconductors with high mobility and moderate bandgap are particularly attractive today because of their potential application in fast, low-power, and ultrasmall/thin electronic devices. We investigate the electronic structures of a new layered air-stable oxide semiconductor, Bi2O2Se, with ultrahigh mobility (similar to 2.8 x 10(5) cm(2)/V.s at 2.0 K) and moderate bandgap (similar to 0.8 eV). Combining angle-resolved photoemission spectroscopy and scanning tunneling microscopy, we mapped out the complete band structures of Bi2O2Se with key parameters (for example, effective mass, Fermi velocity, and bandgap). The unusual spatial uniformity of the bandgap without undesired in-gap states on the sample surface with up to similar to 50% defects makes Bi2O2Se an ideal semiconductor for future electronic applications. In addition, the structural compatibility between Bi2O2Se and interesting perovskite oxides (for example, cuprate high-transition temperature superconductors and commonly used substrate material SrTiO3) further makes heterostructures between Bi2O2Se and these oxides possible platforms for realizing novel physical phenomena, such as topological superconductivity, Josephson junction field-effect transistor, new superconducting optoelectronics, and novel lasers.

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