Crystalline tetra-aniline with chloride interactions towards a biocompatible supercapacitor

利乐 苯胺 超级电容器 材料科学 氯化物 生物相容性材料 电化学 化学工程 电极 有机化学 化学 药物化学 生物医学工程 冶金 医学 工程类 物理化学
作者
Xiaoling Tong,Guan Sheng,Dongzi Yang,Shuo Li,Cheng‐Wei Lin,Wei Zhang,Zhihui Chen,Chaohui Wei,Xianzhong Yang,Fei Shen,Yanyan Shao,Hui Wei,Yihan Zhu,Jingyu Sun,Richard B. Kaner,Yuanlong Shao
出处
期刊:Materials horizons [Royal Society of Chemistry]
卷期号:9 (1): 383-392 被引量:35
标识
DOI:10.1039/d1mh01081f
摘要

Recent advances in wearable and implantable electronics have increased the demand for biocompatible integrated energy storage systems. Conducting polymers, such as polyaniline (PANi), have been suggested as promising electrode materials for flexible biocompatible energy storage systems, based on their intrinsic structural flexibility and potential polymer chain compatibility with biological interfaces. However, due to structural disorder triggering insufficient electronic conductivity and moderate electrochemical stability, PANi still cannot fully satisfy the requirements for flexible and biocompatible energy storage systems. Herein, we report a biocompatible physiological electrolyte activated flexible supercapacitor encompassing crystalline tetra-aniline (c-TANi) as the active electrode material, which significantly enhances the specific capacitance and electrochemical cycling stability with chloride electrochemical interactions. The crystallization of TANi endows it with sufficient electronic conductivity (8.37 S cm-1) and a unique Cl- dominated redox charge storage mechanism. Notably, a fully self-healable and biocompatible supercapacitor has been assembled by incorporating polyethylene glycol (PEG) with c-TANi as a self-healable electrode and a ferric-ion cross-linked sodium polyacrylate (Fe3+-PANa)/0.9 wt% NaCl as a gel electrolyte. The as-prepared device exhibits a remarkable capacitance retention even after multiple cut/healing cycles. With these attractive features, the c-TANi electrode presents a promising approach to meeting the power requirements for wearable or implantable electronics.
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