将 CoFe2O4 纳米粒子作为活性多孔碳上的双功能剂用于电池型非对称超级电容器

Qiang Qu, Zhuo Chen, Guo-Tao Sun, Ling Qiu, Ming-qiang Zhu
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引用次数: 0

摘要

电极材料性能低下是制约超级电容器产业发展的主要障碍,而在碳材料中掺杂铁酸钴纳米颗粒(NPs)可以解决这一问题。本文采用一步溶热法成功制备了基于活性炭(AC)的 CoFe2O4 复合材料,并将其应用于电池型非对称超级电容器的阳极。系统评估了溶热温度和加热时间对复合材料特性的影响。在三电极系统中进行的电化学分析表明,由于双电层电容和法拉电容的协同效应,在电流密度为 0.2 A/g 时,在 140 °C 下加热 24 小时的改性活性炭(140MAC24)显示出 571.36 F/g 的优异比电容。此外,CoFe2O4 中的铁和钴元素可转变为氧化物形式,分别在-1.0 至 -0.2 V 的电位范围窗口内加速充电和在 -0.2 至 0.2 V 的电位范围窗口内加速放电。同时,经济可行性评估结果表明,140MAC24 电极的可用性非常好。此外,所组装的超级电容器在 1.8 V 的电位窗口中显示出 171.31 F/g 的出色比电容,在 0.2 A/g 的电流密度下显示出 43.5 Wh/kg 的能量密度,在 10,000 次循环后显示出 82.49% 的电容保持率。这些优异的电化学特性表明,CoFe2O4 可用作一种双功能剂来提高超级电容性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
CoFe2O4 nanoparticles as a bifunctional agent on activated porous carbon for battery-type asymmetrical supercapacitor
The low performance of electrode materials is the main obstacle limiting the development of the supercapacitor industry, which can be solved by doping cobalt ferrate nanoparticles (NPs) with carbon materials. Herein, the composites of CoFe2O4 based on activated carbon (AC) were successfully prepared using a one-step solvothermal method and subsequently applied in anodes of battery-type asymmetrical supercapacitors. The effect of solvothermal temperature and heating time on the composite characteristic was systematically evaluated. The electrochemical analysis in the three-electrode system revealed that modified activated carbon heated at 140 °C for 24 h (140MAC24) displayed excellent specific capacitance of 571.36 F/g at the current density of 0.2 A/g due to the synergistic effect of the double-layer and faradic capacitance. Moreover, iron and cobalt elements in CoFe2O4 could change into the oxide form to accelerate charge in potential range window of -1.0 to -0.2 V and discharge from -0.2 to 0.2 V, respectively. Meanwhile, the result of assessing economic feasibility suggested the splendid availability of 140MAC24 electrodes. Additionally, the assembled supercapacitor displayed the outstanding specific capacitance of 171.31 F/g in the potential window of 1.8 V, energy density of 43.5 Wh/kg at the current density of 0.2 A/g, and capacitance retention rate of 82.49% after 10,000 cycles. The excellent electrochemical properties demonstrated that CoFe2O4 could be used as a bifunctional agent for enhancing supercapacitive performance.
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