材料科学
自愈水凝胶
水下
各向异性
复合材料
极限抗拉强度
复合数
韧性
压阻效应
纺纱
碳纳米管
电阻和电导
纳米技术
变形(气象学)
仿生学
水溶液
刚度
电阻率和电导率
软机器人
可穿戴计算机
人工肌肉
肿胀 的
拉伸试验
压力(语言学)
空化
应力-应变曲线
抗压强度
作者
Shengnan Li,Jingren Ma,Canjie Zhu,Guoqi Chen,Jingquan Han,Jun Fu
标识
DOI:10.1002/adfm.202527007
摘要
Abstract Hydrogels are widely employed in wearable electronics, soft robotics, and human‐machine interfaces owing to their skin‐like softness, strain sensitivity, and biocompatibility. However, synthetic hydrogels often fall short of matching the mechanical robustness and fatigue resistance of natural load‐bearing anisotropic tissues with high water content. Additionally, most hydrogels are prone to swelling, which limits their application in humid environments. Herein, an anisotropic composite hydrogel with outstanding mechanical properties and non‐swelling properties is developed by using polyvinylalcohol (PVA) and carboxylated carbon nanotubes (CNT) through ice templates and salting‐out strategies. The composite hydrogel (PVA/CNT‐S) has anisotropic orientation structure with high water content (65%), exceptional tensile strength (3 MPa) and toughness (4 MJ·m −3 ), and electrical conductivity (0.11 S·m −1 ) along the alignment axis. With a swelling ratio of 0.8%, the hydrogel maintains structural integrity after one month in aqueous environments and endures 1400 underwater fatigue cycles without fracture. The PVA/CNT‐S can be used as a strain sensor with fast response (500 ms) and stable sensing performance (during 10 000 tensile cycles), enabling real‐time monitoring of robotic fish swimming and human motion under water. Moreover, it supports underwater Morse code communication and water level monitoring, offering a versatile platform for submersible sensing, distress signaling, and early alarming applications under aquatic environments.
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