Efficient extraction of energetic charge carriers from engineered plasmonic nanocomposite to perform cascade reaction

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dc.contributor.author Ahlawat, Monika
dc.contributor.author Roy, Abhijit
dc.contributor.author Govind Rao, Vishal
dc.coverage.spatial United States of America
dc.date.accessioned 2021-12-24T11:50:52Z
dc.date.available 2021-12-24T11:50:52Z
dc.date.issued 2021-11
dc.identifier.citation Ahlawat, Monika; Roy, Abhijit and Govind Rao, Vishal, "Efficient extraction of energetic charge carriers from engineered plasmonic nanocomposite to perform cascade reaction", ChemNanoMat: Chemistry of Nanomaterials for Energy, Biology and More, DOI: 10.1002/cnma.202100416, Nov. 2021. en_US
dc.identifier.issn 2199-692X
dc.identifier.uri https://doi.org/10.1002/cnma.202100416
dc.identifier.uri https://repository.iitgn.ac.in/handle/123456789/7334
dc.description.abstract The realization of plasmon-generated hot charge carriers presents tremendous opportunities for light-harvesting in the field of photocatalysis. However, extracting the energetic charge carriers while competing with their recombination tendency is still a major bottleneck for efficient plasmonic photocatalysis. Therefore, strategic changes in the design principles of hybrid plasmonic nanocomposites to generate highly localized charge carriers at the catalytic site are imperative for hot electrons (holes) transfer to short-lived reaction intermediates. Here, we engineered Au?Pt core-shell nanostructures with only a few monolayers of epitaxially grown Pt onto Au nanocubes. The finite element method (FEM) simulations for optical properties of Au?Pt system support the design and hypothesis of selective funneling of plasmonic energy/charge carriers from Au core to Pt shell and their potential extraction for activating chemical bonds on Au?Pt nanocubes (Au?Pt NCs) surface. Further, investigating Au?Pt NCs as plasmonic catalysts, we show direct, visual evidence of plasmon-assisted cascade reduction of nonfluorescent resazurin (Rz) dye to nonfluorescent dihydroresorufin (DHRf) via a highly fluorescent resorufin (Rf) intermediate form. In the excitation wavelength-dependent study, the maximum apparent quantum efficiency of 48% (Rz to Rf conversion) and 8.4% (Rf to DHRf conversion) at 561?nm laser excitation demonstrates the plasmon assisted charge carrier driven cascade reduction on Au?Pt NCs surface. Control experiments carried out with only Au nanocubes (Au NCs) or Pt seed nanoparticles under the same reaction conditions show no significant cascade reduction of Rz, highlighting the synergistic effect of the plasmonic core and ultrathin catalytic shell.
dc.description.statementofresponsibility by Monika Ahlawat, Abhijit Roy and Vishal Govind Rao
dc.language.iso en_US en_US
dc.publisher Wiley en_US
dc.subject Au?Pt nanocubes (Au?Pt NCs) en_US
dc.subject Plasmonic core en_US
dc.subject (Au?Pt NCs) surface en_US
dc.subject Nonfluorescent dihydroresorufin (DHRf) en_US
dc.title Efficient extraction of energetic charge carriers from engineered plasmonic nanocomposite to perform cascade reaction en_US
dc.type Article en_US
dc.relation.journal ChemNanoMat: Chemistry of Nanomaterials for Energy, Biology and More


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