A model with contact maps at both polymer chain and network scales for tough hydrogels with chain entanglement, hidden length and unconventional network topology

Tough hydrogels with unconventional polymer network architectures often show superior mechanical properties because of the microstructures at the polymer chain and network scales. In this study, a single-chain based model, or called the network topology with hidden length and entanglement (NeTHE) mo...

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Main Authors: You, Hao, Zheng, Shoujing, Li, Hua, Lam, Khin Yong
Other Authors: School of Mechanical and Aerospace Engineering
Format: Article
Language:English
Published: 2023
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Online Access:https://hdl.handle.net/10356/170969
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1709692023-10-09T08:23:03Z A model with contact maps at both polymer chain and network scales for tough hydrogels with chain entanglement, hidden length and unconventional network topology You, Hao Zheng, Shoujing Li, Hua Lam, Khin Yong School of Mechanical and Aerospace Engineering Engineering::Mechanical engineering Contact Map Tough Hydrogel Tough hydrogels with unconventional polymer network architectures often show superior mechanical properties because of the microstructures at the polymer chain and network scales. In this study, a single-chain based model, or called the network topology with hidden length and entanglement (NeTHE) model for the tough hydrogels with chain entanglement, hidden length and unconventional network topology, is developed by imposing contact maps at both polymer chain and network scales on the Arruda-Boyce model. In particular, the contact map is imposed at the polymer chain scale to characterize both entanglement and hidden length simultaneously, while the contact map is imposed at the polymer network scale to consider different polymeric network topologies. The present NeTHE model is validated well by comparing published experimental results of a highly entangled hydrogel and two soft regular hydrogels with hidden lengths. It is confirmed that the present model is able to characterize the hardening, softening, swelling, and damage of the hydrogels. By simplifications, the NeTHE model is reduced directly to the pseudo-elasticity model [1]. Furthermore, the model is able to cover the exponential or scaling law type of damage behaviors of the hydrogels. Finally, several parameter studies are conducted for the swelling and hysteresis of the hydrogels. It is observed theoretically that the constraints of polymer chains due to entanglements result in the high swelling resistance of highly entangled hydrogels, while the hidden length facilitates the swelling of soft regular hydrogels. It is also found that, regarding the hysteresis of hydrogels with different polymer network topologies, the ideal polymer network possesses the highest damage tolerance when compared with both the random and high-functionality crosslinked polymer networks. Regarding the effects of entanglements and hidden lengths on the hysteresis, the highly entangled hydrogel shows a lower stress–stretch hysteresis due to the energy dissipated partially to harden polymer chains when compared with the soft regular hydrogel of which the energy is dissipated fully to fracture the polymer chains. 2023-10-09T08:23:03Z 2023-10-09T08:23:03Z 2023 Journal Article You, H., Zheng, S., Li, H. & Lam, K. Y. (2023). A model with contact maps at both polymer chain and network scales for tough hydrogels with chain entanglement, hidden length and unconventional network topology. International Journal of Mechanical Sciences. https://dx.doi.org/10.1016/j.ijmecsci.2023.108713 0020-7403 https://hdl.handle.net/10356/170969 10.1016/j.ijmecsci.2023.108713 2-s2.0-85169819281 en International Journal of Mechanical Sciences © 2023 Elsevier Ltd. All rights reserved.
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering::Mechanical engineering
Contact Map
Tough Hydrogel
spellingShingle Engineering::Mechanical engineering
Contact Map
Tough Hydrogel
You, Hao
Zheng, Shoujing
Li, Hua
Lam, Khin Yong
A model with contact maps at both polymer chain and network scales for tough hydrogels with chain entanglement, hidden length and unconventional network topology
description Tough hydrogels with unconventional polymer network architectures often show superior mechanical properties because of the microstructures at the polymer chain and network scales. In this study, a single-chain based model, or called the network topology with hidden length and entanglement (NeTHE) model for the tough hydrogels with chain entanglement, hidden length and unconventional network topology, is developed by imposing contact maps at both polymer chain and network scales on the Arruda-Boyce model. In particular, the contact map is imposed at the polymer chain scale to characterize both entanglement and hidden length simultaneously, while the contact map is imposed at the polymer network scale to consider different polymeric network topologies. The present NeTHE model is validated well by comparing published experimental results of a highly entangled hydrogel and two soft regular hydrogels with hidden lengths. It is confirmed that the present model is able to characterize the hardening, softening, swelling, and damage of the hydrogels. By simplifications, the NeTHE model is reduced directly to the pseudo-elasticity model [1]. Furthermore, the model is able to cover the exponential or scaling law type of damage behaviors of the hydrogels. Finally, several parameter studies are conducted for the swelling and hysteresis of the hydrogels. It is observed theoretically that the constraints of polymer chains due to entanglements result in the high swelling resistance of highly entangled hydrogels, while the hidden length facilitates the swelling of soft regular hydrogels. It is also found that, regarding the hysteresis of hydrogels with different polymer network topologies, the ideal polymer network possesses the highest damage tolerance when compared with both the random and high-functionality crosslinked polymer networks. Regarding the effects of entanglements and hidden lengths on the hysteresis, the highly entangled hydrogel shows a lower stress–stretch hysteresis due to the energy dissipated partially to harden polymer chains when compared with the soft regular hydrogel of which the energy is dissipated fully to fracture the polymer chains.
author2 School of Mechanical and Aerospace Engineering
author_facet School of Mechanical and Aerospace Engineering
You, Hao
Zheng, Shoujing
Li, Hua
Lam, Khin Yong
format Article
author You, Hao
Zheng, Shoujing
Li, Hua
Lam, Khin Yong
author_sort You, Hao
title A model with contact maps at both polymer chain and network scales for tough hydrogels with chain entanglement, hidden length and unconventional network topology
title_short A model with contact maps at both polymer chain and network scales for tough hydrogels with chain entanglement, hidden length and unconventional network topology
title_full A model with contact maps at both polymer chain and network scales for tough hydrogels with chain entanglement, hidden length and unconventional network topology
title_fullStr A model with contact maps at both polymer chain and network scales for tough hydrogels with chain entanglement, hidden length and unconventional network topology
title_full_unstemmed A model with contact maps at both polymer chain and network scales for tough hydrogels with chain entanglement, hidden length and unconventional network topology
title_sort model with contact maps at both polymer chain and network scales for tough hydrogels with chain entanglement, hidden length and unconventional network topology
publishDate 2023
url https://hdl.handle.net/10356/170969
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