Fang Wei, Luo Haoran, Mwamburi Mwakitawa Ibrahim, Yuan Fang, Lin Xiaoxue, Wang Yifan, Yang Hao, Shumilova Tatyana, Hu Lijun, Zheng Yujie, Li Chen, Ouyang Jianyong, Sun Kuan
MOE Key Laboratory of Low-grade Energy Utilization Technologies and Systems, School of Energy & Power Engineering, Chongqing University, Chongqing, 400044, China.
FRC Komi Science Center, Institute of Geology, Ural Branch, FRC Komi Science Center, Russian Academy of Sciences, Syktyvkar, 167982, Russia.
ChemSusChem. 2025 Mar 3;18(5):e202401749. doi: 10.1002/cssc.202401749. Epub 2024 Dec 4.
Thermogalvanic cells with organic redox couple (OTGCs) have received significant attention for low-grade heat harvesting due to their high thermopower, versatile molecular design, and tailorable physiochemical properties. However, their thermogalvanic conversion power output is largely hindered by slow kinetic rate, which limits practical applications. In this work, we demonstrate a high-performance liquid quinone/hydroquinone (Q/HQ) based OTGC by synergistic coupling redox reaction and thermogalvanic corrosion. By adding hydrochloric acid (HCl) into electrolyte solution, HCl not only boosts intrinsic redox kinetic rate of Q/HQ, but also induces rapid thermogalvanic corrosion of the copper electrode. Notably, these two processes reinforce each other kinetically. Consequently, the Q/HQ-based OTGC exhibits a rapid kinetic rate alongside an increased thermopower, leading to a significantly enhanced power output density. As a result, the Q/HQ-based OTGC achieves an enhanced effective conductivity σ of 4.22 S m and a record high normalized power density P (ΔT) of 108.7 μW m K. This strategy provides a feasible and effective method for development of high-performance OTGCs.
具有有机氧化还原对的热电池(OTGCs)因其高热电势、多样的分子设计和可定制的物理化学性质,在低品位热收集方面受到了广泛关注。然而,其热电流转换功率输出在很大程度上受到缓慢动力学速率的阻碍,这限制了其实际应用。在这项工作中,我们通过协同耦合氧化还原反应和热电流腐蚀,展示了一种基于高性能液体醌/对苯二酚(Q/HQ)的OTGC。通过向电解质溶液中添加盐酸(HCl),HCl不仅提高了Q/HQ的固有氧化还原动力学速率,还引发了铜电极的快速热电流腐蚀。值得注意的是,这两个过程在动力学上相互强化。因此,基于Q/HQ的OTGC表现出快速的动力学速率以及热电势的增加,从而导致功率输出密度显著提高。结果,基于Q/HQ的OTGC实现了4.22 S m的增强有效电导率σ和108.7 μW m K 的创纪录高归一化功率密度P(ΔT)。该策略为高性能OTGC的开发提供了一种可行且有效的方法。