| Literature DB >> 33756202 |
Vempuluru Navakoteswara Rao1, Parnapalle Ravi2, Marappan Sathish2, Manavalan Vijayakumar3, Mohan Sakar4, Mani Karthik5, Subramanian Balakumar6, Kakarla Raghava Reddy7, Nagaraj P Shetti8, Tejraj M Aminabhavi9, Muthukonda Venkatakrishnan Shankar1.
Abstract
Metal chalcogenides play a vital role in the conversion of solar energy into hydrogen fuel. Hydrogen fuel technology can possibly tackle the future energy crises by replacing carbon fuels such as petroleum, diesel and kerosene, owning to zero emission carbon-free gas and eco-friendliness. Metal chalcogenides are classified into narrow band gap (CdS, Cu2S, Bi2S3, MoS2, CdSe and MoSe2) materials and wide band gap materials (ZnS, ZnSe and ZnTe). Composites of these materials are fabricated with different architectures in which core-shell is one of the unique composites that drastically improve the photo-excitons separation, where chalcogenides in the core can be well protected for sustainable uses. Thus,the core-shell structures promote the design and fabrication of composites with the required characteristics. Interestingly, the metal chalcogenides as a core-shell photocatalyst can be classified into type-I, reverse type-I, type-II and S-type nanocomposites, which can effectively influence and significantly enhance the rate of hydrogen production. In this direction, this review is undertaken to provide a comprehensive overview of the advanced preparation processes, properties of metal chalcogenides, and in particular, photocatalytic performance of the metal chalcogenides as a core-shell photocatalysts for solar hydrogen production.Entities:
Keywords: Band gap; Core-shell nanostructures; Metal-chalcogenides; Photocatalysts; Quantum dots; S-Scheme heterojunction; Stability
Year: 2021 PMID: 33756202 DOI: 10.1016/j.jhazmat.2021.125588
Source DB: PubMed Journal: J Hazard Mater ISSN: 0304-3894 Impact factor: 10.588