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◆ ACS applied materials & interfaces2026-09-24

AI-Driven Self-Powered Wearable Sensors for Gait Detection.

Mengfan Zhang, He Liu, Lei Ouyang, Xinan Yao, Yumo She, Deliang Li, Haoyuan Wu, Dianzhe Yang, Hongbo Wang, Ye Tian

原始摘要(英文原文)· Original abstract
Against the backdrop of rapid advancements in wearable biosensing technology, hydrogel-based triboelectric nanogenerators (TENGs) have garnered significant attention due to their flexibility and self-powered sensing capabilities. However, TENGs still face numerous obstacles in terms of sensitivity, long-term stability, and data processing. This paper describes a TENG named DHXN-TENG, which uses a hydrogel named DHXN as its substrate and features a microneedle structure on its upper surface. The DHXN hydrogel exhibits outstanding performance, including high sensitivity (gauge factor (GF): 5.46, strain range: 510%), fast response time (60 ms), fatigue resistance, and good biocompatibility. The DHXN-TENG based on the DHXN hydrogel has an extremely short response time (30 ms), overcoming the limitation of existing self-powered sensors that struggle to acquire signals in real time due to dynamic response hysteresis. At the same time, the DHXN-TENG has a maximum power output of 8.38 W m-2 and an extremely high surface charge density, fundamentally eliminating the risk of battery leakage. Furthermore, the DHXN-TENG demonstrates excellent output stability in environments with fluctuating temperature and humidity while also offering reliable long-term durability. In this study, leveraging the exceptional sensing performance of the DHXN-TENG and integrating wireless Bluetooth technology, we developed a wireless remote intelligent monitoring system for foot movement patterns. The system incorporates deep learning algorithms based on convolutional neural networks for gait recognition and rehabilitation assistance. The DHXN-TENG demonstrates significant potential in the fields of medical rehabilitation and human-computer interaction technology.
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AI-Driven Self-Powered Wearable Sensors for Gait Detection. — 科研速览 Science Skim