Kim Ju Hyeon, Kang Tae June
Department of Mechanical Engineering , INHA University , Incheon 22212 , South Korea.
ACS Appl Mater Interfaces. 2019 Aug 14;11(32):28894-28899. doi: 10.1021/acsami.9b08381. Epub 2019 Jul 31.
Carbon-based porous electrodes have led to remarkable improvements in the performance of thermochemical cells or thermocells that electrochemically harvest low-grade waste thermal energy. However, the output current from the thermocells is hampered by the diffusion effect, which leads to depleted ion concentration as the ions permeate through the porous electrode. Here, we advance a theoretical basis for a quantitative description of the diffusion effect on current generation in such porous electrodes. One single dimensionless parameter of Thiele modulus describes the effect according to the theory adopted from the well-established results in the literature. Experimental results for carbon fiber electrodes are illustrated and quantified by the theory. The theory presented here would provide a basis for the choice and design of porous electrodes for thermocells. The results should also provide a basis for devising electrochemical devices with highly porous electrodes.
碳基多孔电极已使热化学电池或热电池的性能有了显著提升,这些电池能通过电化学方式收集低品位废热能。然而,热电池的输出电流受到扩散效应的阻碍,当离子渗透过多孔电极时,会导致离子浓度降低。在此,我们提出一个理论基础,用于定量描述这种多孔电极中扩散效应对电流产生的影响。根据文献中已确立的结果所采用的理论,一个单一的无量纲参数——西勒模数描述了这种效应。碳纤维电极的实验结果通过该理论得以说明和量化。本文提出的理论将为热电池多孔电极的选择和设计提供依据。这些结果也应为设计具有高度多孔电极的电化学装置提供依据。