4.6 Article

Arsenene/Ca(OH)(2) van der Waals heterostructure: strain tunable electronic and photocatalytic properties

Journal

RSC ADVANCES
Volume 7, Issue 70, Pages 44394-44400

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/c7ra08029h

Keywords

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Funding

  1. National Natural Science Foundation of China [11174220, 11374226]
  2. Key Scientifc Research Project of the Henan Institutions of Higher Learning [16A140009, 18A140018]
  3. Natural Science Foundation of Henan Province of China [162300410116]
  4. Program for Innovative Research Team of Henan Polytechnic University [T2015-3, T2016-2]
  5. Doctoral Foundation of Henan Polytechnic University [B2015-46]
  6. Open Project of Key Laboratory of Radio Frequency and Micro-Nano Electronics of Jiangsu Province [LRME201601]
  7. High-performance Grid Computing Platform of Henan Polytechnic University

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Vertical stacking of two-dimensional materials has recently emerged as an exciting method for the design of novel electronic and optoelectronic devices. In this work, we investigate the structural, electronic, and potential photocatalytic properties of arsenene/Ca(OH)(2) van der Waals (vdW) heterostructures using first-principles calculations. It is found that all of the heterostructures are semiconductors with indirect band gaps and present similar electronic properties, almost irrespective of the stacking arrangement. However, among these heterostructures, the beta-stacking heterostructure is found to be the most stable and its band gap and band edge position can be tuned by biaxial strain. In particular, comparing the band edge positions with the redox potentials of water shows that the strained beta-stacking arsenene/Ca(OH)(2) vdW heterostructure is a potential photocatalyst for water splitting. Meanwhile, this heterostructure exhibits significantly improved photocatalytic properties under visible-light irradiation by the calculated optical absorption spectra. Our findings provide a detailed understanding of the physical properties of arsenene/Ca(OH)(2) vdW heterostructures and a new way to improve the design of photocatalysts for water splitting.

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