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一种通过导电材料双原位生长制备的用于人体运动检测的柔性皮革基传感器。

A Flexible Leather-Based Sensor via the Dual In Situ Growth of Conductive Materials for Human Motion Detection.

作者信息

Bao Yan, Xu Jiachen, Guo Ruyue, Zhang Wenbo, Liu Chao, Lei Peng

机构信息

College of Bioresources Chemical and Materials Engineering, Shaanxi University of Science and Technology, Xi'an 710021, China.

出版信息

Langmuir. 2025 Apr 22;41(15):9740-9752. doi: 10.1021/acs.langmuir.5c00075. Epub 2025 Apr 9.

Abstract

Natural leather, with its mechanical strength, flexibility, and wearing comfort, is an ideal substrate material for wearable sensors. Currently, leather-based piezoresistive sensors still suffer from poor uniformity of conductive networks and weak interfacial interactions between conductive materials and leather, which limit their performance. Herein, it was innovatively proposed that polypyrrole (PPy) and silver nanoparticles (AgNPs) were sequentially grown in situ on the surface of collagen fibers (CFs). Then, the tanning process was carried out to produce a leather-based flexible wearable sensor (PPy/AgNPs-LBPS) with excellent conductivity, hydrothermal, and environmental stability. Specifically, the dual in situ growth and tanning process ensured the uniform penetration and distribution of conductive materials in leather substrates. Meanwhile, the hydrogen bonds between the conductive materials and CFs provided a firm combination to prevent the dropping of conductive materials. The synergistic effect of PPy and AgNPs enhanced the sensing performance of PPy/AgNPs-LBPS. It exhibited high sensitivity (0.65 kPa and 3.76), a wide detection range (0-80 kPa and 0-100%), and fast response capability. These characteristics enabled PPy/AgNPs-LBPS to monitor subtle activities and large-scale movements of the human body in real time, as well as tactile perception. This thesis provides a new idea for the intelligent design of traditional leather materials, multidimensional perception in electronic skin, and advancements in artificial intelligence.

摘要

天然皮革具有机械强度、柔韧性和穿着舒适性,是可穿戴传感器的理想基底材料。目前,基于皮革的压阻式传感器仍存在导电网络均匀性差以及导电材料与皮革之间界面相互作用较弱的问题,这限制了它们的性能。在此,创新性地提出在胶原纤维(CFs)表面依次原位生长聚吡咯(PPy)和银纳米颗粒(AgNPs)。然后,进行鞣制工艺以制备具有优异导电性、水热稳定性和环境稳定性的基于皮革的柔性可穿戴传感器(PPy/AgNPs-LBPS)。具体而言,双重原位生长和鞣制工艺确保了导电材料在皮革基底中的均匀渗透和分布。同时,导电材料与CFs之间的氢键提供了牢固的结合,防止导电材料掉落。PPy和AgNPs的协同效应增强了PPy/AgNPs-LBPS的传感性能。它表现出高灵敏度(0.65 kPa和3.76)、宽检测范围(0-80 kPa和0-100%)以及快速响应能力。这些特性使PPy/AgNPs-LBPS能够实时监测人体的细微活动和大规模运动以及触觉感知。本论文为传统皮革材料的智能设计、电子皮肤中的多维感知以及人工智能的发展提供了新思路。

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