Issue 2, 2022, Issue in Progress

The interlayer coupling modulation of a g-C3N4/WTe2 heterostructure for solar cell applications

Abstract

Constructing van der Waals (vdW) heterostructures has been proved to be an excellent strategy to design or modulate the physical and chemical properties of 2D materials. Here, we investigated the electronic structures and solar cell performances of the g-C3N4/WTe2 heterostructure via first-principles calculations. It is highlighted that the g-C3N4/WTe2 heterostructure presents a type-II band edge alignment with a band gap of 1.24 eV and a corresponding visible light absorption coefficient of ∼106 cm−1 scale. Interestingly, the band gap of the g-C3N4/WTe2 heterostructure could increase to 1.44 eV by enlarging the vdW gap to harvest more visible light energy. It is worth noting that the decreased band alignment difference resulting from tuning the vdW gap, leads to a promotion of the power conversion efficiency up to 17.68%. This work may provide theoretical insights into g-C3N4/WTe2 heterostructure-based next-generation solar cells, as well as a guide for tuning properties of vdW heterostructures.

Graphical abstract: The interlayer coupling modulation of a g-C3N4/WTe2 heterostructure for solar cell applications

Article information

Article type
Paper
Submitted
16 Nov 2021
Accepted
21 Dec 2021
First published
05 Jan 2022
This article is Open Access
Creative Commons BY license

RSC Adv., 2022,12, 998-1004

The interlayer coupling modulation of a g-C3N4/WTe2 heterostructure for solar cell applications

P. Lin, N. Xu, X. Tan, X. Yang, R. Xiong, C. Wen, B. Wu, Q. Lin and B. Sa, RSC Adv., 2022, 12, 998 DOI: 10.1039/D1RA08397J

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