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用于低品位热能收集的热致电流水凝胶的关键设计策略

Critical Design Strategy of Thermogalvanic Hydrogels for Low-Grade Heat Harvesting.

作者信息

Lin Wentao, Wu Shukai, Niu Shuo, Hu Zhe, Chen Guangming, Liu Zhuoxin, Huang Yang, Fang Chao

机构信息

Sustainable Energy and Environment Thrust, The Hong Kong University of Science and Technology (Guangzhou), Guangzhou, Guangdong, 511400, China.

Guangdong Provincial Key Laboratory of New Energy Materials Service Safety, College of Materials Science and Engineering, Shenzhen University, Shenzhen, 518055, China.

出版信息

Adv Sci (Weinh). 2025 Aug;12(31):e06038. doi: 10.1002/advs.202506038. Epub 2025 Jul 14.

Abstract

Low-grade heat, typically defined as heat at temperatures below 100 °C, is abundant and ubiquitous in the daily environment. However, it is often wasted due to the lack of efficient recovery methods. Thermocells (TECs), which leverage the thermogalvanic effect, provide a promising solution for directly converting low-grade heat to electricity. Recently, thermogalvanic hydrogels (THs) have emerged as an innovative class of materials for high-performance TECs due to their giant thermopower, high flexibility, biocompatibility, and low cost. This review comprehensively summarizes the latest advancement in TH research, with a particular focus on the promising design strategies. First, the fundamental mechanisms underlying thermoelectrochemical conversion in THs are systematically scrutinized. Second, the key metrics are outlined for evaluating TECs. Third, current strategies are highlighted for enhancing the thermoelectrochemical performance of THs, including the modifications of polymer matrix, liquid phase, additives, and others. Additionally, the current applications of TH-based devices are examined in energy harvest and sensing. Finally, the remaining challenges are discussed in the field and provide a forward-looking perspective on the future development of THs.

摘要

低温热,通常定义为温度低于100°C的热,在日常环境中丰富且普遍存在。然而,由于缺乏有效的回收方法,它常常被浪费掉。利用热电流效应的热电池(TECs)为将低温热直接转化为电能提供了一个有前景的解决方案。最近,热电流水凝胶(THs)因其巨大的热电势、高柔韧性、生物相容性和低成本,已成为用于高性能TECs的一类创新材料。本综述全面总结了TH研究的最新进展,特别关注有前景的设计策略。首先,系统地审视了THs中热电化学转换的基本机制。其次,概述了评估TECs的关键指标。第三,强调了当前提高THs热电化学性能的策略,包括聚合物基体、液相、添加剂等的改性。此外,还研究了基于TH的器件在能量收集和传感方面的当前应用。最后,讨论了该领域仍然存在的挑战,并对THs的未来发展提供了前瞻性的观点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c4a2/12376630/6c74bbd20472/ADVS-12-e06038-g015.jpg

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