Topological evolution underlying macroscopic stress relaxation in viscous liquids
POSTER
Abstract
Correlations between stress relaxation and topological evolution in viscous liquids are studied by means of molecular dynamics simulation. The local topology is determined through a gyration tensor and the orientation of its principal axis is used to monitor the fluctuation of particle connectivity. In this context, decorrelation of orientational ordering is found to be highly heterogeneous in space in a peculiar manner: At the shear stress relaxation time, the orientationally corelated and decorrelated regions partition the simulated system into two mutually connected, interpenetrating interspersions without self-intersection. We found the orientationally decorrelated subdomain in this sponge-like bicontinuous structure renders a channel which promotes the stress relaxation and therefore underlies viscoelasticity of amorphous materials.
Presenters
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Chi-Huan Tung
Natl Tsing Hua Univ
Authors
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Chi-Huan Tung
Natl Tsing Hua Univ
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Shou-Yi Chang
Natl Tsing Hua Univ
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Yangyang Wang
Oak Ridge National Lab, Oak Ridge National Laboratory
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Jan-Michael Y Carrillo
Oak Ridge National Lab, Nanomaterials Theory Institute, Center for Nanophase Materials Sciences, Oak Ridge National Laboratory, Oak Ridge, Tennessee, United States
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Bobby G Sumpter
Oak Ridge National Lab, Oak Ridge National Laboratory
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Takeshi Egami
University of Tennessee, Department of Materials Science and Engineering, The University of Tennessee
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Yuya Shinohara
Oak Ridge National Lab
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Yongqiang Cheng
Oak Ridge National Laboratory, Oak Ridge National Lab
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Changwoo Dong
Oak Ridge National Lab, Oak Ridge National Laboratory
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Wei-Ren Chen
Oak Ridge National Lab