材料科学
纳米网
压力传感器
电容感应
触觉传感器
夹持器
多孔性
纳米技术
电容
极限抗拉强度
膜
导电体
光电子学
接触力学
复合材料
双层
接触力
接近传感器
接触面积
执行机构
人工肌肉
压力测量
MXenes公司
变形(气象学)
法向力
布基纸
电极
空隙(复合材料)
平面的
作者
Joo Sung Kim,Junyoung Lee,Lulu Sun,Shuxu Wang,Sangmin Chae,Rasha Ahmed Hanafy Bayomi,Ruiliu Wang,Younghyun Ko,Daishi Inoue,Beom Geun Ki,Daisuke Hashizume,Yong-Jai Park,Sungjun Park,Tomoyuki Yokota,Sunghoon Lee,Takao Someya
出处
期刊:ACS Nano
[American Chemical Society]
日期:2026-10-07
标识
DOI:10.1021/acsnano.6c13086
摘要
Abstract Soft robotic grippers require tactile interfaces that selectively detect contact pressure at the object–gripper interface without strain-induced artifacts from gripper deformation. Here, we report an ultrathin pressure-gated ionic-contact (PGIC) sensor for multidirectional tensile strain-insensitive pressure sensing. The sensor consists of stacked ion-conductive nanomesh layers and a porous insulating nanomesh interlayer. Normal pressure locally activates ionically conductive pathways between the ionomesh layers through the porous interlayer, whereas in-plane tensile deformation is mechanically accommodated without forming these pathways. This pressure-gated architecture produces an ionic-contact-mediated capacitive response under normal pressure and negligible capacitance variation under tensile strain. The 25-μm-thick fully nanofiber-based PGIC sensor enables conformal integration with a soft jamming gripper and pressure-selective tactile mapping at the object–gripper interface under simultaneous membrane deformation. The PGIC sensor-integrated gripper achieves stable object grasping and resolves object-dependent contact patterns determined by rigidity and geometry during membrane deformation.
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