Skip to main navigation Skip to search Skip to main content

Negative photoconductivity and hot-carrier bolometric detection of terahertz radiation in graphene-phosphorene hybrid structures

  • V. Ryzhii
  • , M. Ryzhii
  • , D. S. Ponomarev
  • , V. G. Leiman
  • , V. Mitin
  • , M. S. Shur
  • , T. Otsuji
  • Tohoku University
  • Russian Academy of Sciences
  • Moscow Institute of Physics and Technology
  • Bauman Moscow State Technical University
  • The University of Aizu
  • Rensselaer Polytechnic Institute
  • Electronics of the Future, Inc.

Research output: Contribution to journalArticlepeer-review

22 Scopus citations

Abstract

We consider the effect of terahertz (THz) radiation on the conductivity of the ungated and gated graphene (G)-phosphorene (P) hybrid structures and propose and evaluate the hot-carrier uncooled bolometric photodetectors based on the GP-lateral diodes (GP-LDs) and GP-field-effect transistors (GP-FETs) with the GP-channel. The operation of the GP-LDs and GP-FET photodetectors is associated with the carrier heating by the incident radiation absorbed in the G-layer due to the intraband transitions. The carrier heating leads to the relocation of a significant fraction of the carriers into the P-layer. Due to a relatively low mobility of the carriers in the P-layer, their main role is associated with a substantial reinforcement of the scattering of the carriers. The GP-FET bolometric photodetector characteristics are effectively controlled by the gate voltage. A strong negative conductivity of the GP-channel can provide much higher responsivity of the THz hot-carriers GP-LD and GP-FET bolometric photodetectors in comparison with the bolometers with solely the G-channels.

Original languageEnglish
Article number151608
JournalJournal of Applied Physics
Volume125
Issue number15
DOIs
StatePublished - Apr 21 2019

Fingerprint

Dive into the research topics of 'Negative photoconductivity and hot-carrier bolometric detection of terahertz radiation in graphene-phosphorene hybrid structures'. Together they form a unique fingerprint.

Cite this