Tunable Localized Surface Plasmon Resonance and Broadband Visible Photoresponse of Cu Nanoparticles/ZnO Surfaces
Author(s) -
Claudia de Melo,
Maud Jullien,
Yann Battie,
Aotmane En Naciri,
Jaâfar Ghanbaja,
F. Montaigne,
J.F. Pierson,
Federica Rigoni,
Nils Almqvist,
Alberto Vomiero,
Sylvie Migot,
Frank Mücklich,
David Horwat
Publication year - 2018
Publication title -
acs applied materials and interfaces
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.535
H-Index - 228
eISSN - 1944-8252
pISSN - 1944-8244
DOI - 10.1021/acsami.8b17194
Subject(s) - materials science , surface plasmon resonance , optoelectronics , photocurrent , atomic layer deposition , photodetection , nanoparticle , plasmon , responsivity , surface plasmon , localized surface plasmon , resonance (particle physics) , thin film , nanotechnology , photodetector , physics , particle physics
Plasmonic Cu nanoparticles (NP) were successfully deposited on ZnO substrates by atomic layer deposition (ALD) owing to the Volmer-Weber island growth mode. An evolution from Cu NP to continuous Cu films was observed with an increasing number of ALD cycles. Real and imaginary parts of the NP dielectric functions, determined by spectroscopic ellipsometry using an effective medium approach, evidence a localized surface plasmon resonance that can be tuned between the visible and near-infrared ranges by controlling the interparticle spacing and size of the NP. The resulting Cu NP/ZnO device shows an enhanced photoresponse under white light illumination with good responsivity values, fast response times, and stability under dark/light cycles. The significant photocurrent detected for this device is related to the hot-electron generation at the NP surface and injection into the conduction band of ZnO. The possibility of tuning the plasmon resonance together with the photoresponsivity of the device is promising in many applications related to photodetection, photonics, and photovoltaics.
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