Zhang Tingyu, Hao Sanwei, Yu Yaru, Hu Zhouyang, Gu Liqiang, Cong Hailin
School of Materials Science and Engineering, Shandong University of Technology, Zibo 255000, China.
Beijing Key Laboratory of Lignocellulosic Chemistry, College of Materials Science and Technology, Beijing Forestry University, Beijing 100083, China.
ACS Appl Mater Interfaces. 2025 Jul 9;17(27):39503-39513. doi: 10.1021/acsami.5c06208. Epub 2025 Jun 30.
Ionic thermoelectric (i-TE) hydrogel, combined with intrinsic softness, conductivity, and thermoelectricity, is a highly promising candidate for flexible thermoelectric materials to directly harvest low-grade thermal energy from the environment and the human body. However, efficiently converting heat into electricity without compromising structural robustness under extreme mechanical conditions is of great significance but still challenging. Herein, we prepared a poly(vinyl alcohol) (PVA)/sodium alginate (SA)/NaCl/Fe(CN) (PSNF) hydrogel with superior mechanical robustness and thermoelectricity, utilizing the combination of a dual thermoelectric effect by the freeze/thaw method and the Hofmeister effect. Leveraging the advantages of abundant ion transport channels for ion transport at two poles and the efficient energy dissipation of a toughening structure, the PSNF hydrogel delivers a collection of merits, including superior mechanical integrity (toughness up to 1750 kJ·m) and exceptional conductivity (12.11 mS·cm), an impressive high Seebeck coefficient () (1.71 mV·K) and a power factor (PF) (3.54 μW·K·m). As a proof of concept, the assembled thermoelectric integrated device achieves the conversion of heat into electrical energy to drive a bulb array, which can harness stable thermosensation for overheating warnings even under continuous cyclic temperature changes. It is believed that this work may provide insights into the development of robust thermoelectric hydrogels for thermal energy harvesting and overheating warning devices.
离子热电(i-TE)水凝胶兼具固有的柔软性、导电性和热电性,是一种极具潜力的柔性热电材料候选物,可直接从环境和人体中收集低品位热能。然而,在极端机械条件下高效地将热能转化为电能而不损害结构稳健性具有重要意义,但仍具有挑战性。在此,我们利用冻融法的双热电效应和霍夫迈斯特效应的结合,制备了一种具有卓越机械稳健性和热电性的聚乙烯醇(PVA)/海藻酸钠(SA)/氯化钠/铁氰化物(PSNF)水凝胶。利用两极丰富的离子传输通道促进离子传输以及增韧结构的高效能量耗散的优势,PSNF水凝胶具有一系列优点,包括卓越的机械完整性(韧性高达1750 kJ·m)和出色的导电性(12.11 mS·cm)、令人印象深刻的高塞贝克系数(1.71 mV·K)和功率因子(PF)(3.54 μW·K·m)。作为概念验证,组装的热电集成器件实现了热能到电能的转换以驱动灯泡阵列,即使在连续循环温度变化下也能利用稳定的热感进行过热警告。相信这项工作可能为开发用于热能收集和过热警告装置的稳健热电水凝胶提供见解。