Skip to main navigation Skip to search Skip to main content

Near-edge band structures and band gaps of Cu-based semiconductors predicted by the modified Becke-Johnson potential plus an on-site Coulomb U

  • Yubo Zhang
  • , Jiawei Zhang
  • , Weiwei Gao
  • , Tesfaye A. Abtew
  • , Youwei Wang
  • , Peihong Zhang
  • , Wenqing Zhang
  • CAS - Shanghai Institute of Ceramics
  • SUNY Buffalo
  • Nanjing University

Research output: Contribution to journalArticlepeer-review

59 Scopus citations

Abstract

Diamond-like Cu-based multinary semiconductors are a rich family of materials that hold promise in a wide range of applications. Unfortunately, accurate theoretical understanding of the electronic properties of these materials is hindered by the involvement of Cu d electrons. Density functional theory (DFT) based calculations using the local density approximation or generalized gradient approximation often give qualitative wrong electronic properties of these materials, especially for narrow-gap systems. The modified Becke-Johnson (mBJ) method has been shown to be a promising alternative to more elaborate theory such as the GW approximation for fast materials screening and predictions. However, straightforward applications of the mBJ method to these materials still encounter significant difficulties because of the insufficient treatment of the localized d electrons. We show that combining the promise of mBJ potential and the spirit of the well-established DFT + U method leads to a much improved description of the electronic structures, including the most challenging narrow-gap systems. A survey of the band gaps of about 20 Cu-based semiconductors calculated using the mBJ + U method shows that the results agree with reliable values to within ±0.2 eV.

Original languageEnglish
Article number184706
JournalJournal of Chemical Physics
Volume139
Issue number18
DOIs
StatePublished - Nov 14 2013

Fingerprint

Dive into the research topics of 'Near-edge band structures and band gaps of Cu-based semiconductors predicted by the modified Becke-Johnson potential plus an on-site Coulomb U'. Together they form a unique fingerprint.

Cite this