材料科学
反离子
电容
兴奋剂
聚吡咯
氧化还原
掺杂剂
电解质
电极
导电聚合物
聚合
重量分析
离子电导率
化学工程
电化学
聚合物
离子
复合材料
物理化学
有机化学
光电子学
化学
冶金
工程类
作者
Mingyue Zhang,Yu Song,Duo Yang,Zengming Qin,Di Guo,Lijun Bian,Xiaoguang Sang,Xiaoqi Sun,Xiaoxia Liu
标识
DOI:10.1002/adfm.202006203
摘要
Abstract Conducting polymers (CPs) have been widely studied for electrochemical energy storage. However, the dopants in CPs are often electrochemically inactive, introducing “dead‐weight” to the materials. Moreover, commercial‐level electrode materials with high mass loadings (e.g., >10 mg cm −2 ) often encounter the problems of inferior electrical and ionic conductivity. Here, a redox‐active poly‐counterion doping concept is proposed to improve the electrochemical performance of CPs with ultra‐high mass loadings. As a study prototype, heptamolybdate anion (Mo 7 O 24 6− ) doped polypyrrole (PPy) is synthesized by electro‐polymerization. A 2 mm thick PPy electrode with mass loading of ≈192 mg cm −2 reaches a record‐high areal capacitance of ≈47 F cm −2 , competitive gravimetric capacitance of 235 F g −1 , and volumetric capacitance of 235 F cm −3 . With poly‐counterion doping, the dopants also undergo redox reactions during charge/discharge processes, providing additional capacitance to the electrode. The interaction between polymer chains and the poly‐counterions enhances the electrical conductivity of CPs. Besides, the poly‐counterions with large steric hindrance could act as structural pillars and endow CPs with open structures for facile ion transport. The concept proposed in this work enriches the electrochemistry of CPs and promotes their practical applications.
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