Plasmonic Au nanoparticle sandwiched CuBi2O4/Sb2S3 photocathode with multi-mediated electron transfer for efficient solar water splitting

Kumar, Mohit and Ghosh, Chandi Charan and Meena, Bhagatram and Ma, Tianyi and Subrahmanyam, Challapalli (2022) Plasmonic Au nanoparticle sandwiched CuBi2O4/Sb2S3 photocathode with multi-mediated electron transfer for efficient solar water splitting. Sustainable Energy & Fuels. pp. 1-14. ISSN 2398-4902

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Abstract

Developing efficient photocathodes with novel design is essential for enhancing the functioning of photoelectrodes in photoelectrochemical (PEC) water splitting. The efficiency of solar-to-fuel conversion has been proven to be improved by using a suitable structural composition to create heterostructures. Apart from surface reactions, charge transfer between heterojunction interfaces is critically important. We report the first-ever novel and rational design of a hybrid photocathode using a CuBi2O4 based absorber material with a Sb2S3 heterojunction and evenly dispersed plasmonic Au nanoparticles (NPs) sandwiched between CuBi2O4 and Sb2S3. The heterostructure comprising CuBi2O4/Sb2S3 revealed an enhanced photoactivity due to ameliorated light absorption and charge separation showing a photocurrent density of −2.25 mA cm−2 at 0 V vs. RHE at pH 6.65. The crucial dual role of sandwiched Au NPs, as an electron relay mediator, facilitates the electron transfer at the heterojunction interface. Secondly, a plasmonic sensitizer enhances light absorption and charge carrier concentration via charge injection in CuBi2O4/Au/Sb2S3. The CuBi2O4/Au/Sb2S3 photocathode displayed a remarkable photocurrent density of −3.2 mA cm−2 at 0 V vs. RHE (0.85% HC-STH at 0.45 V vs. RHE) at pH 6.65, two-fold enhancement compared to CuBi2O4 (−1.5 mA cm−2 at 0 V vs. RHE, 0.27% HC-STH at 0.3 V vs. RHE). The high-performance CuBi2O4/Au/Sb2S3 photocathode achieves the highest photocurrent and HC-STH efficiency for a heterojunction to the best of our knowledge. Our findings will pave the way for developing new photoelectrodes with metal NPs sandwiched between semiconductor heterostructures and increasing PEC performance for solar-driven PEC water splitting. © 2022 The Royal Society of Chemistry

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IITH Creators:
IITH CreatorsORCiD
Subrahmanyam, ChallapalliUNSPECIFIED
Item Type: Article
Additional Information: MK and BRM sincerely acknowledge the Council of Scientific and Industrial Research India for the fellowship (CSIR-India). TM acknowledges the Australian Research Council (ARC) through the Future Fellowship (FT210100298) and Discovery Project (DP220100603) schemes, CSIRO Energy Centre and Kick-Start Project, and the Victorian Government's support through the provision of a grant from the veski–Study Melbourne Research Partnerships (SMRP) project.
Uncontrolled Keywords: Au nanoparticle; Fuel conversion; Heterojunction interfaces; Mediated electron transfer; Novel design; Photocurrent density; Photoelectrochemical water splitting; Photoelectrode; Plasmonics; Solar water splitting
Subjects: Chemistry
Divisions: Department of Chemistry
Depositing User: . LibTrainee 2021
Date Deposited: 01 Aug 2022 11:23
Last Modified: 01 Aug 2022 11:23
URI: http://raiithold.iith.ac.in/id/eprint/10047
Publisher URL: http://doi.org/10.1039/d2se00600f
OA policy: https://v2.sherpa.ac.uk/id/publication/33504
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