Electrostatically Gated p-n Junctions based on Encapsulated Few Atomic Layers of InSe

POSTER

Abstract

InSe, similar to Transition Metal Dichalcogenides (TMDs), has a layered crystallographic structure and can be exfoliated down to a single unit cell. It has been shown that InSe is a good candidate for photodetectors, covering the visible to the near-infrared region, with high photoresponsivities that are superior to those of other recently reported two-dimensional (2D) crystal based photodetectors. It has also been proved to be a promising candidate for field effect transistors (FET), with carrier mobilities exceeding 1000 cm2/V.s at room temperature. Here we evaluate the performance of p-n junctions that are based on few atomic layers of InSe encapsulated between h-BN on two separate back gates. The thickness of the InSe crystal ranges between 7 to 10 atomic layers with a near direct band gap φ of 1.3<φ<1.4 eV, which makes them a good candidate for photovoltaic applications. Moreover, due to smaller badgap of about 1.25 eV for bulkier crystals the devices are potential candidates for near infrared detection.

*This work was supported by the U.S. Army Research Office MURI Grant W911NF-11-1-0362 and by Office Naval Research DURIP Grant# 11997003

Presenters

  • Wenkai Zheng

    • Natl High Magnetic Field Lab

Authors

  • Shahriar Memaran

    • Natl High Magnetic Field Lab
    • Nat. High Magn. Field Lab., Florida State University
  • Wenkai Zheng

    • Natl High Magnetic Field Lab
  • Luis Balicas

    • Natl High Magnetic Field Lab
    • Nat. High Magn. Field Lab., Florida State University
    • FSU-NHMFL
    • National High Magnetic Field Lab
    • National High Magnetic Field Laboratory
    • Natl. High Magnetic Field Lab, Florida State University
    • High Field Magnet Lab
    • 1800 E. Paul Dirac Drive, National High Magnetic Field Laboratory, Natl High Magnetic Field Lab