Graphics Arts Laboratory, DIC Corporation, Tokyo 174-8520, Japan.
J Phys Chem B. 2010 Jul 1;114(25):8335-40. doi: 10.1021/jp1019526.
Charge/discharge processes of organic radical batteries based on the radical polymer's redox reaction are largely influenced by carbon fibers consisting in the composite electrodes to help electron transfer. To find the optimal structure of the composite electrodes, the dominant electron transfer processes were determined by ac impedance measurement of the composite electrodes. A strong correlation between the overall electron transfer resistance of the composite electrodes and the materials of the current collector suggests that the electric conduction to the current collector through the contact resistance should be crucial. It was also confirmed that the charge/discharge performance of the composite electrode was related to the overall electron transfer resistance of the composite electrode. These results indicated that the charge/discharge performance of the radical battery was dominated by the interfacial electron transfer processes at the current collector/carbon fiber interface and that the rate performance would be much improved by suitably designing the interfacial structure.
基于自由基聚合物氧化还原反应的有机自由基电池的充放电过程在很大程度上受到复合材料电极中碳纤维的影响,这有助于电子转移。为了找到最佳的复合电极结构,通过对复合电极的交流阻抗测量来确定主要的电子转移过程。复合电极的总电子转移电阻与集流器材料之间存在很强的相关性,这表明通过接触电阻向集流器的电传导应该是至关重要的。还证实了复合电极的充放电性能与复合电极的总电子转移电阻有关。这些结果表明,自由基电池的充放电性能由集流器/碳纤维界面的界面电子转移过程主导,通过适当设计界面结构,可以大大提高其倍率性能。