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Band-structure tunability via the modulation of excitons in semiconductor nanostructures: manifestation in photocatalytic fuel generation

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dc.contributor.author Ghosh, S.
dc.contributor.author Sarkar, D.
dc.contributor.author Bastia, S.
dc.contributor.author Chaudhary, Y.S.
dc.date.accessioned 2023-07-28T05:01:35Z
dc.date.available 2023-07-28T05:01:35Z
dc.date.issued 2023
dc.identifier.citation Nanoscale, 15(26), 2023: 10939-10974
dc.identifier.issn 2040-3364
dc.identifier.uri http://ore.immt.res.in/handle/2018/3181
dc.description.abstract Understanding the energetics of electron transfer at the semiconductor interface is crucial for the development of solar harvesting technologies, including photovoltaics, photocatalysis, and solar fuel systems. However, modern artificial photosynthetic materials are not efficient and limited by their fast charge recombination with high binding energy of excitons. Hence, reducing the exciton binding energy can increase the generation of charge carriers, which improve the photocatalytic activities. Extensive research has been dedicated to improving the exciton dissociation efficiency through rational semiconductor design via heteroatom doping, vacancy engineering, the construction of heterostructures, and donor-pi-acceptor (D-pi-A) interfaces to extend the charge carrier migration, promoting the dissociation of excitons. Consequently, functionalized photocatalysts have demonstrated remarkable photocatalytic performances for solar fuel production under visible light irradiation. This review provides the fundamental aspects of excitons in semiconductor nanostructures, having a high binding energy and ultrafast exciton formation together with promising photo-redox properties for solar to fuel conversion application. In particular, this review highlights the significant role of the excitonic effect in the photocatalytic activity of newly developed functional materials and the underlying mechanistic insight for tuning the performance of nanostructured semiconductor photocatalysts for water splitting, CO2 reduction, and N-2 fixation reactions.
dc.language en
dc.publisher Royal Society of Chemistry
dc.relation.isreferencedby SCI
dc.rights Copyright [2023]. All efforts have been made to respect the copyright to the best of our knowledge. Inadvertent omissions, if brought to our notice, stand for correction and withdrawal of document from this repository.
dc.subject Chemical Sciences
dc.subject Interdisciplinary Sciences
dc.subject Materials Sciences
dc.subject Physical Sciences
dc.title Band-structure tunability via the modulation of excitons in semiconductor nanostructures: manifestation in photocatalytic fuel generation
dc.type Journal Article
dc.affiliation.author CSIR-CGCRI, Kolkata 700032, India


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