Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
5441302 | Journal of Non-Crystalline Solids | 2017 | 6 Pages |
Abstract
By affecting the connectivity of atomic networks, composition, temperature, or pressure can induce topological transitions between the three atomic states of rigidity - flexible, isostatic, and stressed-rigid. However, no clear structural signature of such transitions has been elucidated thus far. Here, based on realistic molecular dynamics simulations of irradiation-induced damage in quartz, we report the first evidence of a rigid-to-flexible rigidity transition controlled by structural variations only. This topological transition is shown to arise from the simultaneous loss of atomic Eigenstress and onset of network flexibility, and features a well-defined structural signature in the medium-range order of the atomic network.
Keywords
Related Topics
Physical Sciences and Engineering
Materials Science
Ceramics and Composites
Authors
Bu Wang, N M Anoop Krishnan, Yingtian Yu, Mengyi Wang, Yann Le Pape, Gaurav Sant, Mathieu Bauchy,