Journal of South China University of Technology (Natural Science Edition) ›› 2015, Vol. 43 ›› Issue (6): 37-41.doi: 10.3969/j.issn.1000-565X.2015.06.006

• Chemistry & Chemical Engineering • Previous Articles     Next Articles

Effects of Different Carbon Aerogel Conductive Agents on Performance of Li-MnO2 Battery

Yang Wei1 Chen Sheng-zhou2 Xue Jian-jun3 Hu Xin-fa3 Xia Xin-de3 Lin Wei-ming1   

  1. 1. School of Chemistry and Chemical Engineering,South China University of Technology,Guangzhou 510640,Guangdong,China;2. School of Chemistry and Chemical Engineering,Guangzhou University,Guangzhou 510006,Guangdong,China;3. Guangzhou Great Power Energy & Technology Co. ,Ltd. ,Guangzhou 511483,Guangdong,China
  • Received:2014-12-02 Revised:2015-01-05 Online:2015-06-25 Published:2015-05-04
  • Contact: 杨伟(1982-),男,博士,主要从事应用电化学与新能源材料研究. E-mail:wyang608@163.com
  • About author:杨伟(1982-),男,博士,主要从事应用电化学与新能源材料研究.
  • Supported by:
    Supported by the National Natural Science Foundation of China(21376056) and the Guangdong IAR Fund (2011-1579)

Abstract: Carbon aerogel was prepared by means of the sol-gel method from resorcinol and formaldehyde through CO2 supercritical drying,freeze drying and ambient drying,and the resistivity and pore structure of the product were characterized via N 2 low-temperature adsorption desorption,four-probe method and SEM. Moreover,the influence of carbon aerogel conductive agent on the high-rate discharge performance of Li-MnO2 battery was investigated. The results indicate that (1) the carbon aerogels produced via different drying methods are of similar resistivity but distinctly different specific surface areas; (2) the carbon aerogel prepared via CO2 supercritical drying possesses the highest specific surface area (1017. 85m 2 /g) and the largest constant-current specific discharge capacity (101mAh/g at a current of 100mA); (3) the voltage plateau of the carbon aerogel prepared via CO2 supercritical drying is 80mV higher than that prepared via ambient drying; and (4) there is little difference in the 1 mA discharge capacity of different carbon aerogels. All these above-mentioned statements show that carbon aerogel conductive agents possess higher performance than the commercial acetylene black.

Key words: Li-MnO2 battery, carbon aerogel, conductive agent, high-rate discharge

CLC Number: