Qing Xiong, Chuanyin Xiong, Meiyun Zhang, Mengjie Zhao, Youliang Cheng, Chuanling Si, Changqing Fang, Xianglin Ji and Yonghao Ni
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At the same time, it had good utility in the field of electromagnetic shielding, showing excellent electromagnetic shielding performance (∼59.7 dB) at a thickness of 1 mm. Furthermore, it could maintain a good level of shielding after a long period of time and high tensile deformation (47.0 dB after 56 days of storage, and 42.7 dB after 500% strain stretching). The incorporation of conductive materials with high electromagnetic interference shielding properties improved user safety and device functionality, making the HES-CHAT e-skin suitable for environments with high levels of electromagnetic interference. Additionally, the composite hydrogel demonstrated remarkable electrochemical energy storage properties. 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引用次数: 0
摘要
柔性电子皮肤(e-Skins)已成为一项有前途的技术,可用于各种应用,包括健康监测。在这项工作中,我们提出了一种新的工作,即集成ChatGPT的多功能导电水凝胶作为电子皮肤,成为个人健康助手。具有ChatGPT (HES-CHAT e-Skin)水凝胶的聚乙烯醇/聚氧化物-聚苯胺水凝胶e-Skin在一定应变条件下(500%)表现出优异的机械灵活性和变形响应,使其能够作为监测人体手势的柔性传感器。同时,它在电磁屏蔽领域也有很好的实用性,在厚度为1 mm时,电磁屏蔽性能优异(~59.7 dB)。此外,在长时间和高拉伸变形下,它可以保持良好的屏蔽水平(储存56天后为47.0 dB,拉伸500%时为42.7 dB)。具有高电磁干扰屏蔽性能的导电材料的结合提高了用户安全性和设备功能,使HES-CHAT e-Skin适用于高水平电磁干扰的环境。此外,复合水凝胶还表现出了显著的电化学储能性能。对称超级电容器器件具有高容量电容(在电流密度为5 mA cm-3时为7,848 mF cm-3)、长循环稳定性(10,000次循环测试后电容保持率为81.3%)、40 W cm-3的高功率密度和1,090 mW h cm-3的高能量密度。这种多功能导电聚合物水凝胶为智能水凝胶领域柔性电子器件的发展提供了一种新的策略。
Personal health assistant HES-CHAT e-skins: integrated mechanosensitivity, electromagnetic shielding, and electrochemical energy storage†
Flexible electronic skins (e-skins) have emerged as a promising technology for various applications, including health monitoring. In this work, we present a novel study on a multifunctional, conductive hydrogel with integrated ChatGPT as an electronic skin to become a personal health assistant. The polyvinyl alcohol/polyethylene oxide–polyaniline hydrogel e-skin with ChatGPT (HES-CHAT e-skin) hydrogel demonstrated excellent mechanical flexibility and deformation response under certain strain conditions (500%), enabling it to function as a flexible sensor for monitoring human gestures. At the same time, it had good utility in the field of electromagnetic shielding, showing excellent electromagnetic shielding performance (∼59.7 dB) at a thickness of 1 mm. Furthermore, it could maintain a good level of shielding after a long period of time and high tensile deformation (47.0 dB after 56 days of storage, and 42.7 dB after 500% strain stretching). The incorporation of conductive materials with high electromagnetic interference shielding properties improved user safety and device functionality, making the HES-CHAT e-skin suitable for environments with high levels of electromagnetic interference. Additionally, the composite hydrogel demonstrated remarkable electrochemical energy storage properties. Symmetric supercapacitor devices with high volumetric capacitance (7848 mF cm−3 at a current density of 5 mA cm−3) and long cycle stability (81.3% capacitance retention after 10 000 cycles of testing), along with a high power density of 40 W cm−3 and a high energy density of 1090 mW h cm−3, were obtained. This multifunctional conductive polymer hydrogel provided a novel strategy for the development of flexible electronic devices in the field of smart hydrogels.
期刊介绍:
The Journal of Materials Chemistry A, B & C covers a wide range of high-quality studies in the field of materials chemistry, with each section focusing on specific applications of the materials studied. Journal of Materials Chemistry A emphasizes applications in energy and sustainability, including topics such as artificial photosynthesis, batteries, and fuel cells. Journal of Materials Chemistry B focuses on applications in biology and medicine, while Journal of Materials Chemistry C covers applications in optical, magnetic, and electronic devices. Example topic areas within the scope of Journal of Materials Chemistry A include catalysis, green/sustainable materials, sensors, and water treatment, among others.