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JOURNALS // Kvantovaya Elektronika // Archive

Kvantovaya Elektronika, 2014 Volume 44, Number 9, Pages 852–858 (Mi qe16034)

This article is cited in 2 papers

Nanostructures

Spherical gold nanoparticles and SiO2/Au core/shell microparticles under intense femtosecond laser excitation: relaxation dynamics of gold nanoparticles and nanostructuring of borosilicate glass using SiO2/Au microparticles

A. M. Shakhovab, A. A. Astaf'eva, N. N. Denisovc, F. E. Gosteva, I. V. Shelaeva, A. N. Titova, V. A. Nadtochenkoac

a N. N. Semenov Institute of Chemical Physics, Russian Academy of Sciences, Moscow
b Moscow Institute of Physics and Technology (State University), Dolgoprudny, Moscow region
c Institute of Problems of Chemical Physics, Russian Academy of Sciences, Chernogolovka, Moscow region

Abstract: This paper reports surface nanostructuring of borosilicate glass covered with a water layer and the production of ~150 nm diameter pits using SiO2/Au core/shell microparticles under excitation with 50 fs pulses (λ = 780 nm) using the optical scheme of an inverted microscope with a 100×, NA = 1.4 objective. We compare the thresholds for hole formation in glass with the use of SiO2/Au and uncoated SiO2 microparticles. The threshold is 0.7 J cm-2 for SiO2/Au and 2.9 J cm-2 for SiO2 microparticles, which coincides with the threshold for nanostructuring by a focused femtosecond pulse without microparticles: 3 J cm-2. Femtosecond pump – probe spectroscopy has been used to study the relaxation dynamics of laser pulse energy absorbed in a Au nanoparticle and the dynamics of energy dissipation to the ambient medium. The threshold for cavitation bubble formation in water with SiO2/Au has been determined to be 0.06 mJ cm-2, which is a factor of 30 lower than the bubble formation threshold in the case of uncoated SiO2 microparticles.

Keywords: femtosecond laser microstructuring, plasmon resonance, gold nanoparticles, core/shell nanoparticles, femtosecond pump – probe spectroscopy.

PACS: 79.20.Eb, 81.16.-c, 78.67.Bf

Received: 03.03.2014
Revised: 20.03.2014


 English version:
Quantum Electronics, 2014, 44:9, 852–858

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