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Puckered Penta-like PdPX (X = O, S, Te) Semiconducting Nanosheets: First-Principles Study of the Mechanical, Electro- Optical, and Photocatalytic Properties

  • Asadollah Bafekry
  • , Mohamed M. Fadlallah
  • , Mehrdad Faraji
  • , Nguyen N. Hieu
  • , Hamad R. Jappor
  • , Catherine Stampfl
  • , Yee Sin Ang
  • , Mitra Ghergherehchi
  • Guilan University
  • Benha University
  • TOBB University of Economics and Technology
  • Duy Tan University
  • University of Babylon
  • The University of Sydney
  • Singapore University of Technology and Design

Research output: Contribution to journalArticlepeer-review

Abstract

The atomic, electronic, optical, and mechanical properties of penta-like two-dimensional PdPX (X = O, S, Te) nanosheets have been systematically investigated using density functional theory calculations. All three PdPX nanosheets exhibit dynamic and mechanical stability on the basis of an analysis of phonon dispersions and the Born criteria, respectively. The PdPX monolayers are found to be brittle structures. Our calculations demonstrate that the PdPX nanosheets exhibit semiconducting characteristics with indirect band gaps of 0.93 (1.99), 1.34 (2.11), and 0.74 (1.51) eV for X = O, S, Te, respectively, using the PBE (HSE06) functional, where PdPTe is the best material for visiblelight photocatalytic water splitting. Our findings give important basic characteristics of penta-like two-dimensional PdPX materials and should motivate further theoretical and experimental investigations of these interesting materials.

Original languageEnglish
Pages (from-to)21577-21584
Number of pages8
JournalACS Applied Materials and Interfaces
Volume14
Issue number18
DOIs
StatePublished - 2022

Keywords

  • electro-optical properties
  • first-principles study
  • PdPX (X = O, S Te) nanosheets
  • photocatalytic properties
  • puckered penta-like structures

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