4.7 Article

Solar hydrogen generation from organic substance using earth abundant CuS-NiO heterojunction semiconductor photocatalyst

Journal

CERAMICS INTERNATIONAL
Volume 47, Issue 7, Pages 10206-10215

Publisher

ELSEVIER SCI LTD
DOI: 10.1016/j.ceramint.2020.12.062

Keywords

Photocatalysis; Solar hydrogen; Lactic acid; Water splitting; Metal chalcogenide

Funding

  1. Ministry of New and Renewable Energy (MNRE) , New Delhi, India [103/227/2014NT]
  2. Council of Scientific Industrial Research (CSIRSRF) , New Delhi, India [09/1076 (0005) /2019-EMR-1]
  3. European Regional Development Fund
  4. Welsh Government

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This study investigates the critical role of NiO co-catalyst in enhancing the interface properties of CuS primary photocatalyst, resulting in prolonged lifetime of photo-excitons and improved solar-to-hydrogen production efficiency. The CuS/NiO composite exhibits superior photocatalytic water splitting performance compared to CuO and NiO, with a 13-fold increase. Additionally, the champion CuS/NiO catalyst demonstrates enhanced photocatalytic hydrogen production in the presence of lactic acid-based aqueous electrolyte, outperforming other organic substances under identical experimental conditions.
This work explores the critical role of NiO co-catalyst assembled on the surface of a CuS primary photocatalyst which effectively improves interface properties and enhances solar-to-hydrogen production by prolonging lifetime of photo-excitons generated at the CuS surface. The nanoscale CuS/NiO heterojunction is formulated using hydrothermal and wet impregnation methods. The resultant CuS/NiO composite shows optical absorbance between 380 and 780 nm region. The type-II energetic structure formed at CuS/NiO heterojunction facilitates rapid charge separation and as a result, the CuS/NiO composite exhibits 13 folds higher photocatalytic water splitting performance than CuO and NiO. The champion CuO/NiO photocatalyst is first identified by screening the catalysts using a preliminary water splitting test reaction under natural Sunlight irradiation. After the optimization of the catalyst, it was further explored for enhanced photocatalytic hydrogen production using different organic substances dispersed in water (alcohols, amine and organic acids). The champion CuS/NiO catalyst (CPN-2) exhibited the photocatalytic hydrogen production rate of 52.3 mmol h(-1).g(cat)(-1) in the presence of lactic acid-based aqueous electrolyte and, it is superior than hydrogen production rate obtained in the presence of other organic substances (triethanolamine, glycerol, ethylene glycol, methanol) tested under identical experimental conditions. These results indicate that the energetic structure of CuS/NiO photocatalyst is favorable for photocatalytic oxidation or reforming of lactic acid. The oxidation of lactic acid contributes both protons and electrons for enhanced hydrogen generation as well as protects CuS from photocorrosion. The modification of surface property and energetic structure of CuS photocatalyst by the NiO co-catalyst improves photogenerated charge carrier separation and in turn enhances the solar-to-hydrogen generation efficiency. The recyclability tests showed the potential of CPN-2 photocatalyst for prolonged photocatalytic hydrogen production while continuous supply of lactic acid feedstock is available.

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