材料科学
聚乙烯醇
人工肌肉
溶剂
化学工程
复合材料
氢键
肿胀 的
韧性
单宁酸
聚合物
极限抗拉强度
执行机构
纳米技术
化学
有机化学
分子
电气工程
工程类
作者
Xiang‐Jun Zha,Bin Zhang,Zhicheng Cheng,Sheng Zhang,Jun‐Hong Pu,Jigang Huang,Wei Yang
标识
DOI:10.1016/j.cej.2023.146548
摘要
Hydrogel actuators have aroused tremendous interests in various fields such as artificial muscles, biomedicine and wearable devices. However, hydrogel actuators face persistent challenges due to their intrinsic weak and hydrophilic networks, which result in brittle and weak mechanical properties after swelling. Here, we proposed a solvent-exchange hydrogen bond activation strategy to fabricate a highly strong and tough self-adaptive organohydrogel actuators (SOA). The glycerol releasing and water retention triggers abnormal swelling of SOA due to the cross-linking of tannic acid (TA) and polyvinyl alcohol (PVA) nanofibrillar network. After the hydrogen bond activation between PVA and TA, SOA shows a denser and porous nanofibrillar network with high tensile strength (5.4 ± 0.2 MPa), high fracture energy (134.9 ± 7.6 kJ/m2), and high toughness (18.5 ± 0.7 MJ/m3). Owing to its good processibility, an anisotropic multi-filament twisted fiber actuator that exhibits ultra-high modulus (83.5 ± 2.6 MPa) and humidity-sensitive actuation performance was developed. The proposed solvent-exchange strategy shows great potential for the rational design and fabrication of bionic strong and tough artificial muscles.
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