SnS2 Nanoparticles Embedded in BiVO4 Surfaces via Eutectic Decomposition for Enhanced Performance in Photoelectrochemical Water Splitting

Author:

Chaudhary Surekha1,Hassan Mostafa Afifi12,Kim Myeong‐Jin1,Jung Wan‐Gil13,Ha Jun‐Seok4,Moon Won‐Jin3,Ryu Sang‐Wan5,Kim Bong‐Joong1ORCID

Affiliation:

1. School of Materials Science and Engineering Gwangju Institute of Science and Technology (GIST) 123 Cheomdangwagi‐ro Buk‐gu Gwangju 61005 South Korea

2. Department of Physics Faculty of Science New Valley University El‐Kharja 72511 Egypt

3. Korea Basic Science Institute Gwangju 61186 South Korea

4. School of Chemical Engineering Chonnam National University Gwangju 61186 South Korea

5. Department of Physics Chonnam National University Gwangju 61186 South Korea

Abstract

AbstractBiVO4 has garnered substantial interest as a promising photoanode material for photoelectrochemical water‐splitting due to its narrow band gap and appropriate band edge positions for water oxidation. Nevertheless, its practical use has been impeded by poor charge transport and sluggish water oxidation kinetics. Here, a hybrid composite photoanode is fabricated by uniformly embedding SnS2 nanoparticles near the surface of a BiVO4 thin film, creating a type II heterostructure with strong interactions between the nanoparticles and the film for efficient charge separation. This structure forms via eutectic melting during atomic layer deposition of SnS2 with subsequent phase separation between SnS2 and BiVO4 at room temperature, offering greater advantages and flexibilities over conventional exsolution techniques. Furthermore, the SnS2/BiVO4 hybrid composite is coated with a thin amorphous ZnS passivation layer to accelerate charge transfer process and enhance long‐term stability. The optimized BiVO4/SnS2/ZnS photoanode exhibits a photocurrent density of 5.44 mA cm−2 at 1.23 V versus RHE, which is 2.73 times higher than that of the BiVO4 photoanode, and a dramatic improvement in photostability retention at 1.23 V versus RHE, increasing from 55% to 91% over 24 hours. This method of anchoring nanoparticles onto host materials proves highly valuable for energy and environmental applications.

Funder

National Research Foundation of Korea

Publisher

Wiley

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