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一种用于收集低品位热能的新型凝胶热电化学电池。

A Novel Gel Thermoelectric Chemical Cell for Harvesting Low-Grade Heat Energy.

作者信息

Yue Qu, Gao Taotao, Wang Yujue, Meng Yan, Li Xiaoqin, Yuan Hongyan, Xiao Dan

机构信息

Institute for Advanced Study, Chengdu University, Chengdu, 610106, P. R. China.

Institute of New Energy and Low-Carbon Technology, Sichuan University, Chengdu, 610207, P. R. China.

出版信息

ChemSusChem. 2023 Jan 20;16(2):e202201815. doi: 10.1002/cssc.202201815. Epub 2022 Dec 2.

Abstract

The use of gel thermoelectric chemical cells to capture low-grade heat for conversion to electricity is an attractive approach. However, there are few studies on whether the distribution of redox species in the electrolyte has an effect on the performance of cells. Herein, this concern was discussed by constructing a novel gel thermoelectric chemical cell (Cu-C-cg). Using cellulose-like rice paper as a separator, a concentration gradient of electrolyte was carefully constructed, so that the concentration of potassium ferrocyanide gradually decreased from the hot electrode to the cold electrode while the concentration of potassium ferricyanide gradually increased. Through electrochemical measurement and analysis, it was found that the thermoelectric performance of this cell outperformed the cell without electrolyte concentration gradients. Meanwhile, this performance could be enhanced by the use of asymmetric electrodes composed of copper foil and carbon electrodes. After optimizing the conditions, the open-circuit voltage, output power, and Seebeck coefficient of the Cu-C-cg cell at 12 K temperature difference were 0.450 V, 183 μW, and 7.82 mV K , respectively. This work not only provides a novel idea in gel-based cell design but also an excellent thermoelectric chemical cell.

摘要

使用凝胶热电化学电池捕获低品位热量以转化为电能是一种有吸引力的方法。然而,关于电解质中氧化还原物质的分布是否对电池性能有影响的研究很少。在此,通过构建一种新型凝胶热电化学电池(Cu-C-cg)来探讨这一问题。使用类纤维素米纸作为隔膜,精心构建了电解质的浓度梯度,使得亚铁氰化钾的浓度从热电极到冷电极逐渐降低,而铁氰化钾的浓度逐渐升高。通过电化学测量和分析发现,该电池的热电性能优于没有电解质浓度梯度的电池。同时,使用由铜箔和碳电极组成的不对称电极可以提高这种性能。优化条件后,Cu-C-cg电池在12 K温差下的开路电压、输出功率和塞贝克系数分别为0.450 V、183 μW和7.82 mV K。这项工作不仅为基于凝胶的电池设计提供了新思路,还提供了一种优异的热电化学电池。

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