Remarkable ionic thermoelectric performance of high-entropy gel thermocell near room temperature

Abstract

Gel thermocell, as a green and clean energy conversion technology, has a high ionic thermopower, and it is capable of functioning for self-powered sensors near room temperature. However, ionic thermoelectric performance is currently limited and needs to be improved to meet the practical requirements. To date, it has been a major challenge to significantly improve performance, including ionic thermopower, output power density, and energy harvesting. Herein, we propose a “high-entropy” concept by controlling the gel compositions to achieve remarkable ionic thermoelectric performance. The high-entropy results from multi-ion coupling, especially for anions, to improve redox reaction entropy change, exchange current density, and ionic conductivity, pushing the performance to high levels. The fabricated high-entropy gel thermocell showed an ionic thermopower of 31 mV K−1, a normalized maximum output power density of 11.4 mW m−2 K−2, and a one-hour continuous discharge energy density of 4.3 J m−2 K−2. Moreover, a device assembled by twelve thermocells delivered a maximum output power density of 2.0 mW m−2 K−2. Thus, the strategy proposed in this work provides guidelines for designing other high-performance gels.

Graphical abstract: Remarkable ionic thermoelectric performance of high-entropy gel thermocell near room temperature

Supplementary files

Article information

Article type
Paper
Submitted
18 Sep 2024
Accepted
22 Jan 2025
First published
05 Feb 2025

Energy Environ. Sci., 2025, Advance Article

Remarkable ionic thermoelectric performance of high-entropy gel thermocell near room temperature

L. Yang, J. Chen, C. Han, Y. Zhu, C. Xie, Z. Liu, H. Wang, Y. Bao, D. Han and L. Niu, Energy Environ. Sci., 2025, Advance Article , DOI: 10.1039/D4EE04247F

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