Band engineering in Janus In2NaX monolayers for photocatalytic water splitting

Two-dimensional Janus monolayers offer a promising platform for solar-driven water splitting owing to their intrinsic out-of-plane polarity, which facilitates efficient separation of photogenerated charge carriers. In this work, first-principles calculations based on the FP-LAPW + lo method were employed to investigate the structural, electronic, optical, and photocatalytic properties of the previously unexplored Janus In 2 NaX (X = S, Se, and Te) monolayers. HSE06 calculations predict direct band gaps of 1.58, 1.40, and 0.95 eV for In 2 NaS, In 2 NaSe, and In 2 NaTe, respectively, while spin–orbit coupling induces only minor band-gap reductions without altering the electronic characteristics. GW-BSE calculations reveal excellent UV–visible light absorption, with absorption coefficients reaching approximately 57 × 10 5 cm⁻ 1 and corrected solar-to-hydrogen efficiencies of 18.31–22.41%. Band-edge alignment and HER/OER thermodynamic driving-force analysis demonstrate that In 2 NaS and In 2 NaSe possess sufficient reduction and oxidation potentials for overall water splitting, whereas In 2 NaTe is suitable only for the oxygen evolution reaction because its conduction-band minimum is insufficiently negative for hydrogen evolution. The superior photocatalytic activity of In 2 NaS is further supported by its favorable HER/OER Gibbs free-energy descriptors. Structural optimization, phonon spectra, ab initio molecular dynamics, and elastic constants confirm the energetic, dynamical, thermal, and mechanical stability of the investigated monolayers, identifying In 2 NaS and In 2 NaSe as promising visible-light photocatalysts for sustainable hydrogen production.

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Publication Details

Journal
Solar Energy
Published
2026-10-05
DOI
https://doi.org/10.1016/j.solener.2026.115204
Primary Topic
2D Materials and Applications
Type
article
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article

Band engineering in Janus In2NaX monolayers for photocatalytic water splitting

Abdulrahman Alsawi, Sahar Abdalla, Hela Ferjani, Sami M. Alharbi et al.
Solar Energy
2D Materials and Applications
article

Band engineering in Janus In2NaX monolayers for photocatalytic water splitting

Abdulrahman Alsawi, Sahar Abdalla, Hela Ferjani, Sami M. Alharbi, Mohamed El Amine El Goutni, Mohammed Batouche, Mohamed Houcine Daou
article en

Abstract

Two-dimensional Janus monolayers offer a promising platform for solar-driven water splitting owing to their intrinsic out-of-plane polarity, which facilitates efficient separation of photogenerated charge carriers. In this work, first-principles calculations based on the FP-LAPW + lo method were employed to investigate the structural, electronic, optical, and photocatalytic properties of the previously unexplored Janus In 2 NaX (X = S, Se, and Te) monolayers. HSE06 calculations predict direct band gaps of 1.58, 1.40, and 0.95 eV for In 2 NaS, In 2 NaSe, and In 2 NaTe, respectively, while spin–orbit coupling induces only minor band-gap reductions without altering the electronic characteristics. GW-BSE calculations reveal excellent UV–visible light absorption, with absorption coefficients reaching approximately 57 × 10 5 cm⁻ 1 and corrected solar-to-hydrogen efficiencies of 18.31–22.41%. Band-edge alignment and HER/OER thermodynamic driving-force analysis demonstrate that In 2 NaS and In 2 NaSe possess sufficient reduction and oxidation potentials for overall water splitting, whereas In 2 NaTe is suitable only for the oxygen evolution reaction because its conduction-band minimum is insufficiently negative for hydrogen evolution. The superior photocatalytic activity of In 2 NaS is further supported by its favorable HER/OER Gibbs free-energy descriptors. Structural optimization, phonon spectra, ab initio molecular dynamics, and elastic constants confirm the energetic, dynamical, thermal, and mechanical stability of the investigated monolayers, identifying In 2 NaS and In 2 NaSe as promising visible-light photocatalysts for sustainable hydrogen production.

Solar EnergyVol. 319
Qassim University (SA), Imam Mohammad ibn Saud Islamic University (SA), Université Mustapha Stambouli de Mascara (DZ)
Openalex Percentile: Top 26%
2D Materials and Applications
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