Advanced Conductive Polymers in Energy Conversion and Storage

A special issue of Polymers (ISSN 2073-4360). This special issue belongs to the section "Polymer Applications".

Deadline for manuscript submissions: 15 May 2024 | Viewed by 1660

Special Issue Editors


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Guest Editor
College of Chemistry and Chemical Engineering, Lanzhou University, Lanzhou, China
Interests: energy conversion and storage; porous carbon; graphyne; conductive polymer; supercapacitors; Li-ion hybrid capacitor/battery; Na-ion hybrid capacitor/battery; Zn-ion hybrid capacitor/battery; electrocatalysis
MOE Key Laboratory of New Processing Technology for Nonferrous Metal and Materials, Ministry of Education, University of Technology, Guilin, China
Interests: conductive polymer; energy conversion and storage; Zn-ion hybrid capacitor; flexible electronic; MXene

Special Issue Information

Dear Colleagues,

With the increasing energy demand and environmental issues, the topic of high-efficiency energy conversion and storage has attracted great attention. Conductive polymers are a class of important materials with wide applications in the field of energy storage and conversion, which is due to their excellent conductive properties, processability, low cost, plentiful functional groups, and appealing catalytic and mechanical properties.

This Special Issue focuses on the latest research advances in the design and preparation of conductive polymers and/or their composites and their energy applications. These applications include rechargeable batteries, supercapacitors, and electrocatalysis, among others. We hope that this Special Issue will provide new insights into the design and preparation of advanced conductive polymer materials for addressing these energy issues.

Dr. Yongqing Zhao
Dr. Chao Yang
Guest Editors

Manuscript Submission Information

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Please visit the Instructions for Authors page before submitting a manuscript. The Article Processing Charge (APC) for publication in this open access journal is 2700 CHF (Swiss Francs). Submitted papers should be well formatted and use good English. Authors may use MDPI's English editing service prior to publication or during author revisions.

Keywords

  • energy conversion and storage
  • conductive polymers
  • supercapacitors
  • Li-ion hybrid capacitor/battery
  • Na-ion hybrid capacitor/battery
  • Zn-ion hybrid capacitor/battery
  • electrocatalysis

Published Papers (1 paper)

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Research

18 pages, 8658 KiB  
Article
A Solid-State Wire-Shaped Supercapacitor Based on Nylon/Ag/Polypyrrole and Nylon/Ag/MnO2 Electrodes
by Ruirong Zhang, Xiangao Wang, Sheng Cai, Kai Tao and Yanmeng Xu
Polymers 2023, 15(7), 1627; https://doi.org/10.3390/polym15071627 - 24 Mar 2023
Cited by 2 | Viewed by 1346
Abstract
In this work, a novel wire-shaped supercapacitor based on nylon yarn with a high specific capacitance and energy density was developed by designing an asymmetric configuration and integrating pseudocapacitive materials for both electrodes. The nylon/Ag/MnO2 yarn was prepared as a positive electrode [...] Read more.
In this work, a novel wire-shaped supercapacitor based on nylon yarn with a high specific capacitance and energy density was developed by designing an asymmetric configuration and integrating pseudocapacitive materials for both electrodes. The nylon/Ag/MnO2 yarn was prepared as a positive electrode by electrochemically depositing MnO2 on a silver-paste-coated nylon yarn. Additionally, PPy was prepared on nylon/Ag yarn by chemical polymerization firstly to enlarge the surface roughness of nylon/Ag, and then the PPy could be easily coated on the chemically polymerized nylon/Ag/PPy by electrochemical polymerization to obtain a nylon/Ag/PPy yarn-shaped negative electrode. The wire-shaped asymmetric supercapacitor (WASC) was fabricated by assembling the nylon/Ag/MnO2 electrode, nylon/Ag/PPy electrode and PAANa/Na2SO4 gel electrolyte. This WASC showed a wide potential window of 1.6 V and a high energy density varying from 13.9 to 4.2 μWh cm−2 with the corresponding power density changing from 290 to 2902 μW cm−2. Meanwhile, because of the high flexibility of the nylon substrate and superior adhesion of active materials, the WASC showed a good electrochemical performance stability under different bending conditions, suggesting its good flexibility. The promising performance of this novel WASC is of great potential for wearable/portable devices in the future. Full article
(This article belongs to the Special Issue Advanced Conductive Polymers in Energy Conversion and Storage)
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