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A computational method for characterizing molecular-scale load transfer in polymer systems with structural heterogeneity

Authors
Kim, HongdeokChoi, Joonmyung
Issue Date
Dec-2024
Publisher
SPRINGERNATURE
Citation
POLYMER JOURNAL, v.57, no.4, pp 385 - 394
Pages
10
Indexed
SCIE
SCOPUS
Journal Title
POLYMER JOURNAL
Volume
57
Number
4
Start Page
385
End Page
394
URI
https://scholarworks.bwise.kr/erica/handle/2021.sw.erica/121909
DOI
10.1038/s41428-024-00997-4
ISSN
0032-3896
1349-0540
Abstract
Contemporary polymer physics emphasizes polymer material design, which uses nano- and microscale structures to predict and optimize material properties. Despite their importance, predicting the mechanical behavior of polymers remains challenging because of the diverse configurations of their molecular chains. In recent years, quantitative structure-property relationship modeling based on molecular dynamics (MD) simulations has become increasingly important. MD simulations excel at resolving sub-10-nm-scale morphological features, providing critical insights into network topology, chemical conformation, and molecular transitions. This review highlights recent MD simulation studies that have focused on subcontinuum heterogeneities in polymers from the perspective of their mechanical properties. The theoretical framework for rationally distributing the stress tensor to individual molecular components is revisited, and the key achievements made via this approach are summarized.
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