可生物降解聚合物基塑料芯片电极在超级电容器中的集流应用

Kirti, Rajeev Gupta, D. N. Srivastava
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引用次数: 1

摘要

在这里,我们报告了可生物降解聚合物基塑料芯片电极(PCE)作为超级电容器应用中的电流收集器的性能。使用两种氧化还原材料(导电聚合物聚苯胺和聚(3,4-乙烯二氧噻吩))和层状材料氧化石墨烯(rGO)对其生产进行了评估。采用恒电流法将导电聚合物直接沉积在环保PCE (EPCE)上。用常规方法制备还原氧化石墨烯,并使用粘合剂将其加载到EPCE上。与常规集流器相比,导电聚合物和氧化石墨烯均显示出合适的比电容。在实验中发现电极在高酸性介质中具有很高的稳定性。通过循环伏安法、充放电测量和阻抗谱法对超电容性能进行了评价。超电容材料的电学和微观性能也得到了表征。在0.5 Ag−1下,聚苯胺和PEDOT沉积在epce上,分别显示>150 Fg−1和>120 Fg−1的比电容。rGO继续表现出更高的比电容,>250 Fg−1,具有优异的充放电循环稳定性。该研究得出结论,EPCs可以作为电能存储应用的有前途的电极。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Biodegradable Polymer-Based Plastic Chip Electrode as a Current Collector in Supercapacitor Application
Here, we report the performance of a biodegradable polymer-based Plastic chip Electrode (PCE) as a current collector in supercapacitor applications. Its production was evaluated using two redox materials (conducting polymers polyaniline and poly(3,4-ethylene dioxythiophene)) and a layered material, rGO. The conducting polymers were directly deposited over the Eco-friendly PCE (EPCE) using the galvanostatic method. The rGO was prepared in the conventional way and loaded over the EPCE using a binder. Both conducting polymers and rGO showed proper specific capacitance compared to previous studies with regular current collectors. Electrodes were found highly stable during experiments in high acidic medium. The supercapacitive performance was evaluated with cyclic voltammetry, charge–discharge measurements, and impedance spectroscopy. The supercapacitive materials were also characterized for their electrical and microscopic properties. Polyaniline and PEDOT were deposited over EPCEs showing >150 Fg−1 and >120 Fg−1 specific capacitance, respectively, at 0.5 Ag−1. rGO continued to show higher particular capacitance of >250 Fg−1 with excellent charge–discharge cyclic stability. The study concludes that EPCs can be used as promising electrodes for electrical energy storage applications.
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CiteScore
6.30
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