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  4. Direct Comparison of Second Harmonic Generation and Two-Photon Photoluminescence from Single Connected Gold Nanodimers
 
research article

Direct Comparison of Second Harmonic Generation and Two-Photon Photoluminescence from Single Connected Gold Nanodimers

Wang, Jiyong
•
Butet, Jeremy
•
Baudrion, Anne-Laure
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2016
Journal Of Physical Chemistry C

In this article we compare the two-photon photoluminescence and second harmonic generation from single connected gold nanodimers. Analyzing the particle size-dependent nonlinear optical spectra and performing excitation polarization resolved measurements using an experimental setup combining a femtosecond laser source with a parabolic mirror, we show that second harmonic generation and two-photon photoluminescence have different behaviors despite the same expected fundamental intensity-dependence. For further understanding of the observed phenomena, the plasmon resonances of single nanodimers are investigated using dark-field optical microscopy, and calculations are performed with Green's tensor method. Furthermore, the underlying mechanisms explaining the differences between these two optical processes are investigated using a surface integral equation method for the nonlinear computations. This study reveals that the different trends in the polarization-dependences of two-photon photoluminescence and second harmonic generation with the increasing diameters of the connected discs are due to their distinct physical nature, resulting in specific rules for plasmon enhancement and different coherence properties. Furthermore, this article clearly points out that special care has to be taken when two-photon photoluminescence and second harmonic generation are used to evaluate the amplitudes of electromagnetic hot-spots generated in plasmonic nanostructures.

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Type
research article
DOI
10.1021/acs.jpcc.6b04850
Web of Science ID

WOS:000381452000060

Author(s)
Wang, Jiyong
Butet, Jeremy
Baudrion, Anne-Laure
Horrer, Andreas
Levesque, Gaetan
Martin, O. J. F.  
Meixner, Alfred J.
Fleischer, Monika
Adam, Pierre-Michel
Horneber, Anke
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Date Issued

2016

Publisher

American Chemical Society

Published in
Journal Of Physical Chemistry C
Volume

120

Issue

31

Start page

17699

End page

17710

Subjects

Nanophotonics

•

Plasmonics

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
NAM  
Available on Infoscience
October 18, 2016
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/130346
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