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Plasmon assisted thermal modulation in nanoparticles

Single-particle interactions hold the promise of nanometer-scale devices in areas such as data communications and storage, nanolithography, waveguides, renewable energy and therapeutics. We propose that the collective electronic properties possessed by noble metal nanoparticles may be exploited for...

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Published in:Optics express 2013-05, Vol.21 (10), p.12145-12158
Main Authors: Lereu, A L, Farahi, R H, Tetard, L, Enoch, S, Thundat, T, Passian, A
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cited_by cdi_FETCH-LOGICAL-c433t-4bfb78e44f6bb281e69100cdc8273cbbb417c03bd18801db2a86e16bf08e6c243
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container_end_page 12158
container_issue 10
container_start_page 12145
container_title Optics express
container_volume 21
creator Lereu, A L
Farahi, R H
Tetard, L
Enoch, S
Thundat, T
Passian, A
description Single-particle interactions hold the promise of nanometer-scale devices in areas such as data communications and storage, nanolithography, waveguides, renewable energy and therapeutics. We propose that the collective electronic properties possessed by noble metal nanoparticles may be exploited for device actuation via the unapparent mechanism of plasmon-assisted heat generation and flux. The temperature dependence of the dielectric function and the thermal transport properties of the particles play the central role in the feasibility of the thermally-actuated system, however the behavior of these thermoplasmonic processes is unclear. We experimentally and computationally analyzed modulation via thermoplasmonic processes on a test system of gold (Au) nano-islands. Modulation and energy transport in discontinuous domains exhibited quantitatively different characteristics compared to thin films. The results have implications for all surface plasmon based nano-devices where inevitable small-scale thermal processes are present.
doi_str_mv 10.1364/OE.21.012145
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source EZB Electronic Journals Library
subjects Computer Simulation
Engineering Sciences
Gold - chemistry
Hot Temperature
Metal Nanoparticles - chemistry
Metal Nanoparticles - ultrastructure
Models, Chemical
Physics
Surface Plasmon Resonance - methods
title Plasmon assisted thermal modulation in nanoparticles
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