弹性体
耗散系统
韧性
变形(气象学)
胶粘剂
自愈水凝胶
人工肌肉
弹性能
工作(物理)
材料科学
弹性模量
氢键
模数
纳米技术
机械能
分子工程
膜
聚合物
压力(语言学)
智能材料
化学物理
微电子机械系统
聚碳酸酯
天然橡胶
分子动力学
复合材料
作者
Wendong Zhu,Shikun Chen,Zecheng Tao,Yang Liu,Ce Wang,Ya Cheng
出处
期刊:Biomacromolecules
[American Chemical Society]
日期:2025-10-15
卷期号:26 (11): 7812-7824
标识
DOI:10.1021/acs.biomac.5c01333
摘要
Interface issues between skin and electric device have always been a difficulty, including mechanical property, adhesion, and biocompatibility. Especially mechanical strength and linear deformation are contradiction points. Herein, an ultrastretched, self-healing adhesive and conducting polysaccharide hydrogel with a near-linear deformation is developed via the molecular engineering of dissipative energy strategy. Two physical bonds with a large energy difference are introduced into the hydrogel to realize the near-linear ultratensile. Strong metal coordination provides mechanical strength, while numerous weak hydrogen bonds counteract the yielding, so that near-linear ultradeformation (2199.27%), elastic modulus (29.025 kPa), stress (183.05 kPa), toughness (2.65 MJ m-3), adhesion, and self-healing characterizations are accomplished. Moreover, based on mechanical and adhesive properties, hydrogel-based sensors are fabricated. Furthermore, robotic hand control, assistance driving, and tactile tracing are realized. This work provided a novel and universal approach to design and fabricate an elastomer with near-perfect linear ultradeformation by battle strong and weak interactions for HMI.
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