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Sustainable Nanoplasmon-Enhanced Photoredox Reactions: Synthesis, Characterization, and Applications

dc.contributor.authorBhattacharya, Chirasmita
dc.contributor.authorSaji, Sandra
dc.contributor.authorMohan, Akhil
dc.contributor.authorMadav, Vasudeva
dc.contributor.authorJia, Guohua
dc.contributor.authorYin, Zongyou
dc.date.accessioned2022-10-07T01:08:59Z
dc.date.issued2020
dc.date.updated2021-11-28T07:21:48Z
dc.description.abstractPlasmonic materials with their unique properties, such as light‐excitable resonant oscillation of conduction electrons, strong local electric field, and energetic hot charges (electrons/holes) etc., have overcome the limitations of traditional photoredox catalysts. They are especially important due to their superior light focusing ability, from free‐space wavelengths to the sub‐wavelength range. Although noble metal plasmonic enhancement has been recognized as one of the most important strategies in photocatalysis, the high cost and limited spectral range absorption of noble metals remain the biggest challenges for their practical application, which has led to a gradual shift in the focus on the abundant and less expensive non‐noble metal plasmonics. Recently, various non‐noble plasmonic materials such as non‐noble metals (Cu, Al, Ni and Bi), metal oxides and chalcogenides (WO3‐x, MoO3‐x, NiO, MNbO3, where M = Ca, Sr or Ba; Fe2O3, SrTiO3, In2O3, Cu2‐xS and Bi2Se3), nitrides (TiN, ZrN, HfN and WN) have emerged as efficient photocatalysts. Herein, the door to the relatively new and exciting world of noble metal‐free plasmonic materials and their promising applicability in solar‐energy driven photo‐redox catalysis such as water splitting, CO2 reduction, nitrogen reduction, organic transformations and environment remediation is opened. Their synthesis methods and a plethora of characterization techniques are also systematically exhibited.en_AU
dc.description.sponsorshipC.B. and S.E.S. contributed equally to this work. The authors gratefully acknowledge financial support from the Australian Research Council (DP190100295, LE190100014) and the ANU Futures Scheme (Q4601024)en_AU
dc.format.mimetypeapplication/pdfen_AU
dc.identifier.issn1614-6840en_AU
dc.identifier.urihttp://hdl.handle.net/1885/274359
dc.language.isoen_AUen_AU
dc.publisherWileyen_AU
dc.relationhttp://purl.org/au-research/grants/arc/DP190100295en_AU
dc.relationhttp://purl.org/au-research/grants/arc/LE190100014en_AU
dc.rights© 2020 Wiley-VCH GmbHen_AU
dc.sourceAdvanced Energy Materialsen_AU
dc.titleSustainable Nanoplasmon-Enhanced Photoredox Reactions: Synthesis, Characterization, and Applicationsen_AU
dc.typeJournal articleen_AU
local.bibliographicCitation.issue40en_AU
local.bibliographicCitation.lastpage32en_AU
local.bibliographicCitation.startpage1en_AU
local.contributor.affiliationBhattacharya, Chirasmita, Indian Institute of Scienceen_AU
local.contributor.affiliationSaji, Sandra, College of Science, ANUen_AU
local.contributor.affiliationMohan, Akhil, National Institute of Technology Karnataka Surathkalen_AU
local.contributor.affiliationMadav, Vasudeva, National Institute of Technology Karnataka Surathkalen_AU
local.contributor.affiliationJia, Guohua, Curtin Universityen_AU
local.contributor.affiliationYin, Zongyou, College of Science, ANUen_AU
local.contributor.authoruidSaji, Sandra, u6836643en_AU
local.contributor.authoruidYin, Zongyou, u1035740en_AU
local.description.embargo2099-12-31
local.description.notesImported from ARIESen_AU
local.identifier.absfor000000 - Internal ANU use onlyen_AU
local.identifier.ariespublicationa383154xPUB15631en_AU
local.identifier.citationvolume10en_AU
local.identifier.doi10.1002/aenm.202002402en_AU
local.publisher.urlhttps://www.wiley.com/en-gben_AU
local.type.statusPublished Versionen_AU

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