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Tough and tunable adhesion of hydrogels:experiments and models 被引量:7
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作者 Teng Zhang hyunwoo yuk +2 位作者 Shaoting Lin German A.Parada Xuanhe Zhao 《Acta Mechanica Sinica》 SCIE EI CAS CSCD 2017年第3期543-554,共12页
As polymer networks infiltrated with water, hydrogels are major constituents of animal and plant bodies and have diverse engineering applications. While natural hydrogels can robustly adhere to other biological materi... As polymer networks infiltrated with water, hydrogels are major constituents of animal and plant bodies and have diverse engineering applications. While natural hydrogels can robustly adhere to other biological materials, such as bonding of tendons and cartilage on bones and adhesive plaques of mussels, it is challenging to achieve such tough adhesions between synthetic hydrogels and engineering materials. Recent experiments show that chemically anchoring long-chain polymer networks of tough synthetic hydrogels on solid surfaces create adhesions tougher than their natural counterparts, but the underlying mechanism has not been well understood. It is also challenging to tune systematically the adhesion of hydrogels on solids. Here, we provide a quantitative understanding of the mechanism for tough adhesions of hydrogels on solid materials via a combination of experiments, theory, and numerical simulations. Using a coupled cohesive-zone and Mullins-effect model validated by experiments, we reveal the interplays of intrinsic work of adhesion, interfacial strength, and energy dissipation in bulk hydrogels in order to achieve tough adhesions. We further show that hydrogel adhesion can be systematically tuned by tailoring the hydrogel geometry and silanization time of solid substrates, corresponding to the control of energy dissipation zone and intrinsic work of adhesion, respectively. The current work further provides a theoretical foundation for rational design of future biocompatible and underwater adhesives. 展开更多
关键词 ADHESION HYDROGELS Soft materials Mullins effect
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用于3D打印无约束快速变形软材料的铁磁畴
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作者 Xuanhe Zhao Yoonho Kim +3 位作者 hyunwoo yuk Ruike Zhao Shawn A.Chester 刘斐莹 《家电科技》 2018年第7期8-8,共1页
软质材料能够响应诸如光、热、溶剂、电场和磁场等刺激而发生三维(3D)形状变化,在柔性电子、软体机器人以及生物医学等多种领域有广泛应用。其中,磁场条件为生物医学应用提供了一种安全有效的操作方法。
关键词 软材料 无约束 磁畴 变形 打印 3D 生物医学 软质材料
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