用于自供电可穿戴生物传感的热电水凝胶

Xinru Yang , Xueliang Ma , Yu Niu , Yuxiu Yao , Saeed Ahmed Khan , Hulin Zhang , Xiaojing Cui
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摘要

尽管物联网和人工智能的蓬勃发展加速了可穿戴智能生物电子技术的发展,但对外部电源的严重依赖仍是一个亟待解决的问题。热电材料已成为一种前景广阔的解决方案,它能有效地将人体热量转化为电能,为可穿戴设备提供稳定、不受限制的电源。此外,在对灵活性要求极高的可穿戴热电生物传感领域,通过结构和成分优化,具有优异导电性、柔韧性和生物相容性的水凝胶已成为构建生物传感器的理想材料,可满足可穿戴生物电子学的多样化应用需求。本文系统综述了用于自供电可穿戴生物传感的热电凝胶的最新研究进展,包括热电工作原理以及热电水凝胶的制备、设计和应用。文章展示了基于热电凝胶的可穿戴设备在温度传感、应变传感、温度应变协同传感、呼吸监测和汗液分析等领域的应用现状。最后,文章总结了当前热电凝胶在自供电可穿戴生物电子学中面临的挑战和前景,鼓励基于热电凝胶的智能可穿戴设备的快速应用和实现。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Thermoelectric hydrogels for self-powered wearable biosensing

Although the flourishing of the Internet of Things and artificial intelligence has accelerated the development of wearable smart bioelectronics, heavy reliance on external power remains a problem that needs to be solved. Thermoelectric materials have emerged as a promising solution, efficiently converting body heat into electrical energy to provide a stable and unrestricted power supply for wearables. Moreover, in the field of wearable thermoelectric biosensing, where flexibility is highly demanded, hydrogels with excellent electrical conductivity, flexibility and biocompatibility through structural and compositional optimization have become ideal materials for constructing biosensors and meet the diverse application needs of wearable bioelectronics. This article systematically reviews the latest research progress on thermoelectric gels for self-powered wearable biosensing, including the principles of thermoelectric operation, as well as the preparation, design, and application of thermoelectric hydrogels. The current state of thermoelectric gel-based wearable applications in the fields of temperature sensing, strain sensing, temperature-strain synergistic sensing, respiratory monitoring, and sweat analysis are displayed in the article. Finally, the paper summarizes the current challenges and prospects of thermoelectric gels in self-powered wearable bioelectronics, encouraging the rapid application and realization of thermoelectric gel-based smart wearables.

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