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Data from: Photoinduced Electron Transfer in the Strong Coupling Regime: Waveguide–Plasmon Polaritons

RMIT University, Australia
Dr Daniel Gomez (Associated with, Aggregated by)
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ctx_ver=Z39.88-2004&rft_val_fmt=info%3Aofi%2Ffmt%3Akev%3Amtx%3Adc&rfr_id=info%3Asid%2FANDS&rft_id=https://figshare.com/articles/Photoinduced_Electron_Transfer_in_the_Strong_Coupling_Regime_Waveguide_Plasmon_Polaritons/3102175&rft.title=Data from: Photoinduced Electron Transfer in the Strong Coupling Regime: Waveguide–Plasmon Polaritons&rft.identifier=d783ca2e6c3f776ed4201caff9e41aa7&rft.publisher=RMIT University, Australia&rft.description=Attached file provides supplementary data for linked article. Reversible exchange of photons between a material and an optical cavity can lead to the formation of hybrid light-matter states where material properties such as the work function [ Hutchison et al. Adv. Mater. 2013, 25, 2481-2485 ], chemical reactivity [ Hutchison et al. Angew. Chem., Int. Ed. 2012, 51, 1592-1596 ], ultrafast energy relaxation [ Salomon et al. Angew. Chem., Int. Ed. 2009, 48, 8748-8751; Gomez et al. J. Phys. Chem. B 2013, 117, 4340-4346 ], and electrical conductivity [ Orgiu et al. Nat. Mater. 2015, 14, 1123-1129 ] of matter differ significantly to those of the same material in the absence of strong interactions with the electromagnetic fields. Here we show that strong light-matter coupling between confined photons on a semiconductor waveguide and localized plasmon resonances on metal nanowires modifies the efficiency of the photoinduced charge-transfer rate of plasmonic derived (hot) electrons into accepting states in the semiconductor material. Ultrafast spectroscopy measurements reveal a strong correlation between the amplitude of the transient signals, attributed to electrons residing in the semiconductor and the hybridization of waveguide and plasmon excitations.&rft.creator=Dr Daniel Gomez&rft.date=2017&rft.relation=http://dx.doi.org/10.1021/acs.nanolett.6b00310&rft_rights=All rights reserved &rft_rights=CC BY-NC: Attribution-Noncommercial 3.0 AU http://creativecommons.org/licenses/by-nc/3.0/au&rft_subject=Hot-charge carriers &rft_subject=Plasmonics&rft_subject=Strong coupling&rft_subject=Ultrafast spectroscopy&rft_subject=Nanomaterials&rft_subject=TECHNOLOGY&rft_subject=NANOTECHNOLOGY&rft.type=dataset&rft.language=English Access the data

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Attached file provides supplementary data for linked article. Reversible exchange of photons between a material and an optical cavity can lead to the formation of hybrid light-matter states where material properties such as the work function [ Hutchison et al. Adv. Mater. 2013, 25, 2481-2485 ], chemical reactivity [ Hutchison et al. Angew. Chem., Int. Ed. 2012, 51, 1592-1596 ], ultrafast energy relaxation [ Salomon et al. Angew. Chem., Int. Ed. 2009, 48, 8748-8751; Gomez et al. J. Phys. Chem. B 2013, 117, 4340-4346 ], and electrical conductivity [ Orgiu et al. Nat. Mater. 2015, 14, 1123-1129 ] of matter differ significantly to those of the same material in the absence of strong interactions with the electromagnetic fields. Here we show that strong light-matter coupling between confined photons on a semiconductor waveguide and localized plasmon resonances on metal nanowires modifies the efficiency of the photoinduced charge-transfer rate of plasmonic derived (hot) electrons into accepting states in the semiconductor material. Ultrafast spectroscopy measurements reveal a strong correlation between the amplitude of the transient signals, attributed to electrons residing in the semiconductor and the hybridization of waveguide and plasmon excitations.

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  • Local : d783ca2e6c3f776ed4201caff9e41aa7
ACN 633 798 857