自愈水凝胶
材料科学
乙烯醇
韧性
生物相容性
聚合物
软机器人
极限抗拉强度
纳米技术
弹性体
可伸缩电子设备
化学工程
复合材料
高分子化学
数码产品
执行机构
化学
冶金
物理化学
工程类
电气工程
作者
Shuwang Wu,Mutian Hua,Yousif Alsaid,Yingjie Du,Yanfei Ma,Yusen Zhao,Chiao‐Yueh Lo,Canran Wang,Dong Wu,Bowen Yao,Joseph Strzalka,Hua Zhou,Xinyuan Zhu,Ximin He
标识
DOI:10.1002/adma.202007829
摘要
Abstract Hydrogels, exhibiting wide applications in soft robotics, tissue engineering, implantable electronics, etc., often require sophisticately tailoring of the hydrogel mechanical properties to meet specific demands. For examples, soft robotics necessitates tough hydrogels; stem cell culturing demands various tissue‐matching modulus; and neuron probes desire dynamically tunable modulus. Herein, a strategy to broadly alter the mechanical properties of hydrogels reversibly via tuning the aggregation states of the polymer chains by ions based on the Hofmeister effect is reported. An ultratough poly(vinyl alcohol) (PVA) hydrogel as an exemplary material (toughness 150 ± 20 MJ m −3 ), which surpasses synthetic polymers like poly(dimethylsiloxane), synthetic rubber, and natural spider silk is fabricated. With various ions, the hydrogel's various mechanical properties are continuously and reversibly in situ modulated over a large window: tensile strength from 50 ± 9 kPa to 15 ± 1 MPa, toughness from 0.0167 ± 0.003 to 150 ± 20 MJ m −3 , elongation from 300 ± 100% to 2100 ± 300%, and modulus from 24 ± 2 to 2500 ± 140 kPa. Importantly, the ions serve as gelation triggers and property modulators only, not necessarily required to remain in the gel, maintaining the high biocompatibility of PVA without excess ions. This strategy, enabling high mechanical performance and broad dynamic tunability, presents a universal platform for broad applications from biomedicine to wearable electronics.
科研通智能强力驱动
Strongly Powered by AbleSci AI