卡诺循环
阳极
材料科学
氧化还原
结晶
工艺工程
热电效应
化学工程
电化学
能量转换效率
电极
能量转换
相(物质)
流量(数学)
过程(计算)
热电冷却
相变
法拉第效率
余热
大气温度范围
溶剂
纳米技术
塞贝克系数
航程(航空)
过程集成
工作(物理)
热电发电机
催化作用
作者
Hengji Zhao,Yaowu Zhang,Bin Xu,Shuguang Chen,Bo Liu
标识
DOI:10.1021/acsaem.5c02579
摘要
Efficient and cost-effective technologies are highly desired to convert a tremendous amount of low-grade waste heat to electricity. Although the thermally regenerative electrochemical cycle (TREC) has attracted increasing attention, its unsatisfactory thermal-to-electrical conversion efficiency often limits its practical applications. In this work, a strategy based on temperature-sensitive crystallization is demonstrated in a TREC system to boost its thermoelectric performance by rationally regulating the activities of the redox couple at different temperatures. With a Zn anode and a [Fe(CN)6]4–/3– catholyte modified with propylene glycol, the TREC flow cell presents a high temperature coefficient of −2.0 mV K–1 and achieves an apparent thermoelectric efficiency of 6.72% relative to the Carnot efficiency in the temperature range of 25–50 °C. This strategy of using a common industrial solvent to induce a reversible phase transition can inspire research into high-efficiency and cost-effective TREC devices for practical low-grade heat harnessing.
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