Raman spectroscopy of femtosecond multi-pulse irradiation of vitreous silica: experiment and simulation
N.S. Shcheblanov, M.E. Povarnitsyn, K.N. Mishchik, A. Tanguy

TL;DR
This study combines experimental Raman spectroscopy and molecular dynamics simulations to investigate femtosecond multi-pulse laser-induced densification in vitreous silica, revealing two densification stages and structural changes validated by models.
Contribution
It introduces a comprehensive experimental and numerical approach to understand laser-induced densification in vitreous silica, highlighting bond-breaking and structural evolution mechanisms.
Findings
Two stages of densification observed: growth and saturation.
Excellent agreement between experiments and MD simulations.
Structural changes include reduced ring fractions and Si-O-Si angle modifications.
Abstract
We report an experimental and numerical study of femtosecond multi-pulse laser-induced densification in vitreous silica (v-SiO2) and its signature in Raman spectra. We compare the experimental findings to recently developed molecular dynamics (MD) approach accounting for bond-breaking due to laser irradiation, together with a dynamical matrix approach and bond polarizability model based on first-principle calculations for the estimation of Raman spectra. We observe two stages of the laser-induced densification and Raman spectrum evolution: growth during several hundreds of pulses followed by further saturation. At the medium-range, the network connectivity change in v-SiO2 is expressed in reduction of major ring fractions leading to more compacted structure. With the help of Sen & Thorpe model, we also study the short-range order transformation and derive the interbonding Si-O-Si angle…
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