Unlocking a near 1 eV direct band gap, lattice-matched InN–As heterostructure with moist resistance for enhanced optoelectronic applications

Abstract

Hexagonal indium nitride (InN) and arsenene (As) are two examples of experimentally validated two-dimensional (2D) materials that have been regarded promising for use in nanoelectronic devices. However, the current endeavor is centered on manipulating their electronic properties, specifically ways to induce the transition from an indirect to a direct band gap (Eg) in them. To overcome this challenge, we performed first-principles calculations to thoroughly examine the possibility of attaining a direct Eg compound by considering several stacking configurations of InN and As monolayers. The calculated binding energies (Eb) indicate that the stacking configuration with As positioned above In has higher stability compared to other stacking modes. It has a type-II band alignment with a direct Eg of 0.91 eV and a reasonable carrier mobility (μ ∼ 103 cm2 V−1 s−1), making it highly suited for absorbing visible light. As a result, improved optical absorption intensity and photo response range in the proposed heterostructure are also observed compared with individual InN and As monolayers.

Graphical abstract: Unlocking a near 1 eV direct band gap, lattice-matched InN–As heterostructure with moist resistance for enhanced optoelectronic applications

Supplementary files

Article information

Article type
Paper
Submitted
14 Jun 2025
Accepted
17 Jul 2025
First published
28 Jul 2025

Phys. Chem. Chem. Phys., 2025, Advance Article

Unlocking a near 1 eV direct band gap, lattice-matched InN–As heterostructure with moist resistance for enhanced optoelectronic applications

Y. H. R. Chang, K. H. Yeoh, J. Jiang, M. H. Tuh and Q. Liang, Phys. Chem. Chem. Phys., 2025, Advance Article , DOI: 10.1039/D5CP02275D

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