材料科学
导电体
软机器人
弹性体
标度系数
多孔性
复合材料
执行机构
人工肌肉
心轴
多孔介质
压阻效应
纳米技术
弹性(材料科学)
纳米孔
夹持器
纳米线
智能材料
联轴节(管道)
电导率
信号(编程语言)
3D打印
熔融沉积模型
电阻率和电导率
软物质
机械工程
变形
压电
自愈水凝胶
悬挂(拓扑)
蜂窝结构
纳米
变形(气象学)
压力(语言学)
GSM演进的增强数据速率
机器人学
电阻和电导
作者
Ouriel Bliah,Konstantin A. Sakharov,Pooi See Lee,S. Magdassi
标识
DOI:10.1002/admt.202502588
摘要
ABSTRACT Creating conductive materials that combine mechanical compliance and shape adaptability is a key to the development of integrated soft robots with sensors. Here, we present a new 3D printed porous elastomer that functions both as a gripper and a sensor. It is composed of polyurethane‐acrylate and dopamine‐methacrylamide sponge that enables metal salt reduction to realize metallization capability. The resulting sponge is conductive, can adapt to objects having various shapes, and can function simultaneously as a sensor and as a structural element. The porous objects are formed by emulsion templating, which yields an interconnected open‐cell network that exposes catechol groups throughout the bulk, enabling uniform silver deposition via the embedded redox groups. The resulting metallized porous elastomer shows high stretchability and mechanical resilience while maintaining conductivity under large deformations. During uniaxial tension, it exhibits an initial conductivity of ∼328 S·m − 1 that decreases reversibly with strain, remaining stable over 500 cycles at 100% elongation with a gauge factor of ∼3. Leveraging this intrinsic coupling of mechanical and electrical responses, 3D‐printed porous meta‐materials function as tunable resistors, and a proof‐of‐concept soft gripper demonstrates simultaneous actuation and sensing. This approach provides a versatile route toward fully 3D‐printed, multifunctional soft robotic systems in which the body and the sensor act as a single component, with programmable electromechanical behavior.
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