稳健性(进化)
计算机科学
电容感应
可穿戴计算机
触觉传感器
可穿戴技术
图像分辨率
材料科学
电子工程
时间分辨率
高分辨率
跟踪(心理语言学)
计算机视觉
分辨率(逻辑)
声学
人工智能
光电子学
原子力显微镜
空间频率
作者
Ruidong Xu,Tong Xu,Ming Li,Ganghua Li,Shukun Liu,Xinyang He,Bin Sun,Taotao Ai,Mingwei Tian
出处
期刊:ACS Nano
[American Chemical Society]
日期:2026-05-22
卷期号:20 (22): 16191-16202
标识
DOI:10.1021/acsnano.6c02762
摘要
Flexible tactile-sensing devices are crucial for enhancing precision in wearable interaction electronics. However, traditional array-based sensing units encounter challenges in high environment robustness and spatial resolution. To address this limitation, we propose an array-free tactile-sensing E-textile that attains superior spatial resolution by exploiting non-faradaic junction effect between the E-textile and the human body. Upon finger contact, ions in the dermis redistribute directionally at the interface, creating a purely capacitive coupled nonfaradaic junction behavior that rapidly generates tactile-sensing signals (<40 ms). These signals demonstrate continuous, linearly graded, and complementary characteristics that enable accurate touch coordinate localization, allowing the E-textile to trace tactile trajectories (e.g., handwriting) at superior resolution without auxiliary integrated circuitry. Notably, the E-textile exhibits excellent robust performance under harsh conditions like extreme temperature (-30-80 °C, with error <0.0017%), mechanical damage, and cyclic washing (>50,000 cycle). Interestingly, this sensing approach can be extended to various mediums such as paper, wood, and water, showcasing its versatility for interactive applications. With its high spatial resolution, durability, and multimodal compatibility, the proposed E-textile offers a promising platform for next-generation human-machine interfaces.
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