自愈水凝胶
材料科学
韧性
细菌纤维素
复合材料
极限抗拉强度
形状记忆合金
联锁
聚合物
纤维素
智能材料
聚合
执行机构
化学工程
高分子化学
结构工程
计算机科学
工程类
人工智能
作者
Jiachuan Hua,Chang Liu,Pui Fai Ng,Bin Fei
标识
DOI:10.1016/j.carbpol.2021.117737
摘要
Tough hydrogels with shape memory property are highly desirable for actuators and smart engineering materials. Herein, super-tough polyacrylamide/iota-carrageenan double-network hydrogels were synthesized via a one-pot radical polymerization and strengthened by incorporating bacterial cellulose microclusters, through the intermolecular hydrogen bonds and topological interlock between microclusters and polymer network. Such hydrogels were able to withstand over 200 kPa of tensile stress, or be stretched over 27 times of initial length, and reached a high toughness of ∼2000 kJ/m3. By tension-drying and post-annealing treatments on the strongest hydrogel, dry strands were fabricated to withstand over 100 MPa of tensile stress. Moreover, these strands presented water-stimulated shape memory by a recovery ratio of 84.3 % in 4 min. Based on these characteristics, this super-tough hydrogel may serve as smart textile or actuator for a variety of applications.
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