Coherent anti-Stokes Raman scattering under electric field stimulation
Author(s) -
Erwan Capitaine,
Nawel Ould Moussa,
Christophe Louot,
Claire Lefort,
Dominique Pagnoux,
J.-R. Duclère,
Junya F. Kaneyasu,
Hideaki Kano,
Ludovic Duponchel,
Vincent Couderc,
Philippe Leproux
Publication year - 2016
Publication title -
physical review. b./physical review. b
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.78
H-Index - 465
eISSN - 2469-9969
pISSN - 2469-9950
DOI - 10.1103/physrevb.94.245136
Subject(s) - electrochemotherapy , electric field , raman scattering , raman spectroscopy , signal (programming language) , field (mathematics) , sample (material) , laser , materials science , optics , physics , optoelectronics , computer science , chemistry , electroporation , biochemistry , mathematics , quantum mechanics , pure mathematics , gene , programming language , thermodynamics
International audienceWe introduce an experiment using electro-CARS, an electro-optical method based on the combination of ultrabroadband multiplex coherent anti-Stokes Raman scattering (M-CARS) spectroscopy and electric field stimulation. We demonstrate that this method can effectively discriminate the resonant CARS signal from the nonresonant background owing to a phenomenon of molecular orientation in the sample medium. Such molecular orientation is intrinsically related to the induction of an electric dipole moment by the applied static electric field. Evidence of the electro-CARS effect is obtained with a solution of n-alkanes (CnH2n+2, 15≤n≤40), for which an enhancement of the CARS signal-to-noise ratio is achieved in the case of CH2 and CH3 symmetric/asymmetric stretching vibrations. Additionally, an electric-field-induced second-harmonic generation experiment is performed in order to corroborate the orientational organization of molecules due to the electric field excitation. Finally, we use a simple mathematical approach to compare the vibrational information extracted from electro-CARS measurements with spontaneous Raman data and to highlight the impact of electric stimulation on the vibrational signal
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