How surface governs vibration-induced degradation of glass Structure: A view from molecular dynamics

Silica glass, renowned for its exceptional thermal stability and mechanical strength, is widely used in optics, manufacturing, and aerospace. However, the mechanisms underlying its structural degradation under external vibrational fields is still rare due to the inherent disordered network. Using molecular dynamics (MD) simulations, we uncover the structural responses and evolution mechanisms of silica glass under external vibration field. Fourier transform of the root-mean-square displacement (RMSD), reduced pair distribution function G(r), and rearrangement of topological rings are applied to elucidate the dynamic behavior of the glass network. Vibration-induced alterations manifest as enhancing high-frequency vibration modes, loosened local structures, and progressive degradation of the network connectivity. Quantitatively, the FWHM of the main G(r) peak increased from 0.077 to 0.193 after repeated vibration, while the average ring size increased from 6.8224 to 6.8495 after three vibration cycles. This study provides molecular-level insights into the structural dynamics of silica glass under external mechanical stress, revealing a novel pathway for understanding the performance degradation of disordered materials.

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Publication Details

Journal
Journal of Non-Crystalline Solids
Published
2026-09-14
DOI
https://doi.org/10.1016/j.jnoncrysol.2026.124357
Primary Topic
Glass properties and applications
Type
article
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How surface governs vibration-induced degradation of glass Structure: A view from molecular dynamics

Fangling Jiang, YaJiao ZHANG, Jing Yan, Lu Deng et al.
Journal of Non-Crystalline Solids
Glass properties and applications
article

How surface governs vibration-induced degradation of glass Structure: A view from molecular dynamics

Fangling Jiang, YaJiao ZHANG, Jing Yan, Lu Deng, Boyuan Li, Feimei Wang, Min Qian, Lili Hu, Chunlei Yu, Jiawei Liu
article en

Abstract

Silica glass, renowned for its exceptional thermal stability and mechanical strength, is widely used in optics, manufacturing, and aerospace. However, the mechanisms underlying its structural degradation under external vibrational fields is still rare due to the inherent disordered network. Using molecular dynamics (MD) simulations, we uncover the structural responses and evolution mechanisms of silica glass under external vibration field. Fourier transform of the root-mean-square displacement (RMSD), reduced pair distribution function G(r), and rearrangement of topological rings are applied to elucidate the dynamic behavior of the glass network. Vibration-induced alterations manifest as enhancing high-frequency vibration modes, loosened local structures, and progressive degradation of the network connectivity. Quantitatively, the FWHM of the main G(r) peak increased from 0.077 to 0.193 after repeated vibration, while the average ring size increased from 6.8224 to 6.8495 after three vibration cycles. This study provides molecular-level insights into the structural dynamics of silica glass under external mechanical stress, revealing a novel pathway for understanding the performance degradation of disordered materials.

Journal of Non-Crystalline SolidsVol. 692
University of Science and Technology of China (CN), Donghua University (CN), Chinese Academy of Sciences (CN), Shanghai Institute of Optics and Fine Mechanics (CN), University of Chinese Academy of Sciences (CN)
Openalex Percentile: Top 99%
Glass properties and applications
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How surface governs vibration-induced degradation of glass Structure: A view from molecular dynamics — Fangling Jiang, YaJiao ZHANG, et al. · Journal of Non-Crystalline Solids (2026) | TGRS Research Map | TGRS