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Article Dans Une Revue Optical Materials Année : 2017

Efficient reverse saturable absorption of sol-gel hybrid plasmonic glasses

Résumé

Monolithic silica sol-gel glasses doped with platinum(II) acetylide complexes possessing respectively four or six phenylacetylene units (PE2-CH2OH and PE3-CH2OH) in combination with various concentrations of spherical and bipyramidal gold nanoparticles (AuNPs) known to enhance non-linear optical absorption, were prepared and polished to high optical quality. The non-linear absorption of the glasses was measured and compared to glasses doped solely with AuNPs, a platinum(II) acetylide with shorter delocalized structure, or combinations of both. At 532 nm excitation wavelength the chromophore inhibited the non-linear scattering previously found for glasses only doped with AuNPs. The measured non-linear absorption was attributed to reverse saturable absorption from the chromophore, as previously reported for PE2-CH2OH/AuNP glasses. At 600 nm strong nonlinear absorption was observed for the PE3-CH2OH/AuNPs glasses, also attributed to reverse saturable absorption. But contrary to previous findings for PE2-CH2OH/AuNPs, no distinct enhancement of the non-linear absorption for PE3-CH2OH/AuNPs was observed. A numerical population model for PE3-CH2OH was used to give a qualitative explanation of this difference. A stronger linear absorption in PE3-CH2OH would cause the highly absorbing triplet state to populate quicker during the leading edge of the laser pulse and this would in turn reduce the influence from two-photon absorption enhancement from AuNPs.
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Dates et versions

hal-01525695 , version 1 (22-05-2017)

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Citer

H. Lundén, C. Lopes, M. Lindgren, A. Liotta, D. Chateau, et al.. Efficient reverse saturable absorption of sol-gel hybrid plasmonic glasses. Optical Materials, 2017, 69, pp.134 - 140. ⟨10.1016/j.optmat.2017.04.024⟩. ⟨hal-01525695⟩
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