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用于超级电容器电极的聚吡咯/MnO/碳布复合材料的简便合成

Facile Synthesis of Polypyrrole/MnO/Carbon Cloth Composites for Supercapacitor Electrodes.

作者信息

Chen Yan, He Hanyue, Liu Min, Xu He, Zhang Haibo, Zhu Xinghua, Yang Dingyu

机构信息

College of Optoelectronic Technology, Chengdu University of Information Technology, Chengdu 610225, China.

Intelligent Manufacturing Industry Technology Research Institute, Sichuan University of Arts and Science, Dazhou 635000, China.

出版信息

Nanomaterials (Basel). 2025 Apr 23;15(9):641. doi: 10.3390/nano15090641.

Abstract

In the development of flexible smart electronics, fabricating electrodes with optimized architectures to achieve superior electrochemical performance remains a significant challenge. This study presents a two-step synthesis and characterization of a polypyrrole (PPy)-MnO/carbon cloth (CC) nanocomposite. The MnO/CC substrate was first prepared via the hydrothermal method, followed by uniform PPy coating through vapor-phase polymerization in the presence of an oxidizing agent. Electrochemical measurements revealed substantial enhancement in performance, with the specific capacitance increasing from 123.1 mF/cm for the MnO/CC composite to 324.5 mF/cm for the PPy/MnO/CC composite at a current density of 2.5 mA/cm. This remarkable improvement can be attributed to the synergistic effects between the conductive PPy polymer and MnO/CC substrate and the formation of additional ion transport channels facilitated by the PPy coating. This work provides valuable insights for designing high-performance electrode materials and advances the development of composite-based energy storage devices.

摘要

在柔性智能电子器件的发展过程中,制造具有优化结构以实现卓越电化学性能的电极仍然是一项重大挑战。本研究提出了一种聚吡咯(PPy)-MnO/碳布(CC)纳米复合材料的两步合成与表征方法。首先通过水热法制备MnO/CC基底,然后在氧化剂存在下通过气相聚合进行均匀的PPy涂层。电化学测量结果表明性能有显著提高,在电流密度为2.5 mA/cm时,MnO/CC复合材料的比电容从123.1 mF/cm增加到PPy/MnO/CC复合材料的324.5 mF/cm。这种显著的改善可归因于导电PPy聚合物与MnO/CC基底之间的协同效应以及PPy涂层促进形成的额外离子传输通道。这项工作为设计高性能电极材料提供了有价值的见解,并推动了基于复合材料的储能器件的发展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/841c/12073381/00b206a3372d/nanomaterials-15-00641-g001.jpg

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