化学
热电效应
热力学
醌
焓
电化学
熵(时间箭头)
补偿(心理学)
溶剂
混合熵
化学物理
塞贝克系数
能量转换
氧化还原
物理化学
计算化学
标准电极电位
甲醇
溶剂效应
线性关系
分子
电化学电位
温度系数
混合(物理)
作者
Hongyao Zhou,Nozomi Yoneda,K. Nohara,Nathan Hartanto,Yusuke Wakayama,H. Inoue,Hideo Ando,Kazuhiko Matsumoto,Teppei Yamada
摘要
Thermocells convert temperature gradients into electrical energy using the entropy change of a redox reaction. The performance of thermocells is governed by the temperature coefficient of electrochemical potential (α), and various strategies are reported to increase α. Solvent mixing has been recognized as one of the effective methods; however, the underlying mechanism remains elusive due to the absence of either systematic experimental or reliable theoretical validation. Herein, we demonstrate that enthalpy-entropy compensation provides a general framework for modeling solvent-mixing effects in thermocells. Variable-temperature electrochemistry reveals the linear relationship between hydrogen-bond entropy (ΔSHB) and enthalpy (ΔHHB) arising from the interactions between methanol and quinone dianions in acetonitrile. This enthalpy-entropy compensation principle enables the prediction of quinone derivatives with a large entropy change─and consequently a large α value─through DFT-based screening of ΔHHB. Notably, tetramethyl-para-benzoquinone exhibits an α value of -3.1 mV K-1, which is the highest absolute value in liquid-based all-organic thermocells. These findings show that enthalpy-entropy compensation is a general molecular design strategy for creating high-performance thermocells.
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