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Superior fracture resistance of fiber reinforced polyampholyte hydrogels achieved by extraordinarily large energy-dissipative process zones

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Please use this identifier to cite or link to this item:http://hdl.handle.net/2115/78710

Title: Superior fracture resistance of fiber reinforced polyampholyte hydrogels achieved by extraordinarily large energy-dissipative process zones
Authors: Huang, Yiwan Browse this author
King, Daniel Rudolf Browse this author
Cui, Wei Browse this author
Sun, Taolin Browse this author
Guo, Honglei Browse this author
Kurokawa, Takayuki Browse this author →KAKEN DB
Brown, Hugh R. Browse this author
Hui, Chung Yuen Browse this author
Gong, Jian Ping Browse this author →KAKEN DB
Issue Date: 14-Jun-2019
Publisher: Royal Society of Chemistry
Journal Title: Journal of materials chemistry A, Materials for energy and sustainability
Volume: 7
Issue: 22
Start Page: 13431
End Page: 13440
Publisher DOI: 10.1039/C9TA02326G
Abstract: Fiber reinforced soft composites (FRSCs) have been developed recently by combining tough but soft polyampholyte hydrogels with stiff yet flexible woven glass fabrics. In this work, we find that the soft composites show increased tearing resistance with sample size and achieve size-independent, exceptionally high tearing energy above a specific size on the centimeter scale. Such size-dependent tearing behavior correlates with the failure mode change from fiber pull-out to fiber fracture. These findings demonstrate that the rigid fibers in the soft matrices transmit force over a large distance, giving the composites very large process zones. Tremendous energy is dissipated in the large process zones, resulting in the superior fracture resistance of FRSCs. By saturation of the process zone size, the soft composites become extraordinarily tough, showing an intrinsic tearing energy of ~1000 kJ m−2 that outperforms other existing tough materials. These novel FRSC materials from hydrated biocompatible hydrogels fill the gap between soft materials and traditional rigid materials, as demonstrated by their high tensile modulus (several GPa) and strength (> 300 MPa), along with exceptionally high tearing toughness.
Type: article (author version)
URI: http://hdl.handle.net/2115/78710
Appears in Collections:国際連携研究教育局 : GI-CoRE (Global Institution for Collaborative Research and Education : GI-CoRE) > 雑誌発表論文等 (Peer-reviewed Journal Articles, etc)

Submitter: 龔 剣萍 (Gong Jian Ping)

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