Jia Shuanglin, Qian Wanyu, Yu Penglu, Li Ke, Tang Wenxin, Li Mingxuan, Lan Jinle, Lin Yuan-Hua, Yang Xiaoping
State Key Laboratory of Organic-Inorganic Composites, College of Materials Science and Engineering, Beijing University of Chemical Technology, North Third Ring Road 15, Chaoyang District, Beijing 100029, P. R. China.
State Key Laboratory of New Ceramics and Fine Processing, School of Materials Science and Engineering, Tsinghua University, Shuangqing Road 30, Haidian District, Beijing 100084, P. R. China.
ACS Appl Mater Interfaces. 2024 Dec 18;16(50):69519-69528. doi: 10.1021/acsami.4c18790. Epub 2024 Dec 5.
Ionic thermoelectric materials, renowned for their high Seebeck coefficients, are gaining prominence for their potential in harvesting low-grade waste heat. However, the theoretical underpinnings for enhancing the performance of these materials remain underexplored. In this study, the Hoffmeister effect was leveraged to augment the thermoelectric properties of hydrogel-based ionic thermoelectric materials. A series of PAAm- Zn(CFSO), PAAm- ZnSO, and PAAm- Zn(ClO) hydrogels were synthesized, using polyacrylamide (PAAm) as the matrix and three distinct zinc salts with varying anion volumes to impart the Hoffmeister effect. Exceptionally, the most cost-effective ZnSO yielded the highest ionic Seebeck coefficient among the hydrogels, with PAAm-1 ZnSO achieving a remarkable value of -3.72 mV K. To elucidate the underlying mechanism, we conducted an innovative analysis correlating the Seebeck coefficient with the zinc ion transfer number. Additionally, the hydrogel materials demonstrated outstanding mechanical properties, including high elongation at break (>1400% at its peak), exceptional resilience (virtually no hysteresis loops), and robust fatigue resistance (overlapping cyclic tensile curves). This work not only advances the understanding of ionic thermoelectric materials but also showcases the potential of hydrogels for practical waste heat recovery applications.
离子热电材料以其高塞贝克系数而闻名,因其在收集低品位废热方面的潜力而日益受到关注。然而,提高这些材料性能的理论基础仍未得到充分探索。在本研究中,利用霍夫迈斯特效应来增强水凝胶基离子热电材料的热电性能。以聚丙烯酰胺(PAAm)为基质,使用三种具有不同阴离子体积的不同锌盐来赋予霍夫迈斯特效应,合成了一系列PAAm-Zn(CFSO)、PAAm-ZnSO和PAAm-Zn(ClO)水凝胶。特别的是,最具成本效益的ZnSO在水凝胶中产生了最高的离子塞贝克系数,PAAm-1 ZnSO达到了-3.72 mV K的显著值。为了阐明潜在机制,我们进行了一项创新分析,将塞贝克系数与锌离子迁移数相关联。此外,水凝胶材料还表现出出色的机械性能,包括高断裂伸长率(峰值时>1400%)、出色的弹性(几乎没有滞后回线)和强大的抗疲劳性(重叠的循环拉伸曲线)。这项工作不仅推进了对离子热电材料的理解,还展示了水凝胶在实际废热回收应用中的潜力。