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二氧化碳活化对超级电容器用焦炭基活性炭电化学性能的影响

The Effect of CO2 Activation on the Electrochemical Performance of Coke-Based Activated Carbons for Supercapacitors.

作者信息

Lee Hye-Min, Kim Hong-Gun, An Kay-Hyeok, Kim Byung-Joo

出版信息

J Nanosci Nanotechnol. 2015 Nov;15(11):8797-802. doi: 10.1166/jnn.2015.11524.

Abstract

The present study developed electrode materials for supercapacitors by activating coke-based activated carbons with CO2. For the activation reaction, after setting the temperature at 1,000 degrees C, four types of activated carbons were produced, over an activation time of 0-90 minutes and with an interval of 30 minutes as the unit. The electrochemical performance of the activated carbons produced was evaluated to examine the effect of CO2 activation. The surface structure of the porous carbons activated through CO2 activation was observed using a scanning electron microscope (SEM). To determine the N2/77 K isothermal adsorption characteristics, the Brunauer-Emmett-Teller (BET) equation and the Barrett-Joyner-Halenda (BJH) equation were used to analyze the pore characteristics. In addition, charge and discharge tests and cyclic voltammetry (CV) were used to analyze the electrochemical characteristics of the changed pore structure. According to the results of the experiments, the N2 adsorption isotherm curves of the porous carbons produced belonged to Type IV in the International Union of Pore and Applied Chemistry (IUPAC) classification and consisted of micropores and mesopores, and, as the activation of CO2 progressed, micropores decreased and mesopores developed. The specific surface area of the porous carbons activated by CO2 was 1,090-1,180 m2/g and thus showed little change, but those of mesopores were 0.43-0.85 cm3/g, thus increasing considerably. In addition, when the electrochemical characteristics were analyzed, the specific capacity was confirmed to have increased from 13.9 F/g to 18.3 F/g. From these results, the pore characteristics of coke-based activated carbons changed considerably because of CO2 activation, and it was therefore possible to increase the electrochemical characteristics.

摘要

本研究通过用二氧化碳活化焦炭基活性炭来开发超级电容器的电极材料。对于活化反应,在将温度设定为1000摄氏度后,以30分钟为单位,在0至90分钟的活化时间内制备了四种类型的活性炭。对所制备的活性炭的电化学性能进行了评估,以研究二氧化碳活化的效果。使用扫描电子显微镜(SEM)观察通过二氧化碳活化的多孔碳的表面结构。为了确定N2/77K等温吸附特性,使用布鲁诺尔-埃米特-泰勒(BET)方程和巴雷特-乔伊纳-哈伦达(BJH)方程来分析孔隙特征。此外,还使用充放电测试和循环伏安法(CV)来分析孔隙结构变化后的电化学特性。根据实验结果,所制备的多孔碳的N2吸附等温线曲线在国际纯粹与应用化学联合会(IUPAC)分类中属于IV型,由微孔和中孔组成,并且随着二氧化碳活化的进行,微孔减少,中孔发展。经二氧化碳活化的多孔碳的比表面积为1090-1180平方米/克,因此变化不大,但中孔的比表面积为0.43-0.85立方厘米/克,因此显著增加。此外,在分析电化学特性时,比电容从13.9F/g增加到18.3F/g。从这些结果可以看出,焦炭基活性炭的孔隙特征因二氧化碳活化而发生了显著变化,因此有可能提高其电化学特性。

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