Chem. J. Chinese Universities ›› 2018, Vol. 39 ›› Issue (11): 2520.doi: 10.7503/cjcu20180321
• Physical Chemistry • Previous Articles Next Articles
AI Shujuan1, ZONG Chengxing1, WU Wei1, FENG Jingjing1, JIN Can1, FU Fengzhi1, LIU Jing1,*(), SUN Donglan2,*(
), ZHENG Qin3, GUO Yeping3
Received:
2018-04-25
Online:
2018-11-10
Published:
2018-06-26
Contact:
LIU Jing,SUN Donglan
E-mail:jingliu@tust.edu.cn;sundonglan@tust.edu.cn
Supported by:
CLC Number:
TrendMD:
AI Shujuan, ZONG Chengxing, WU Wei, FENG Jingjing, JIN Can, FU Fengzhi, LIU Jing, SUN Donglan, ZHENG Qin, GUO Yeping. Effect of Derivatives of Glycerol Sulfite as Electrolyte Additive on Electrochemical Performance of Lithium Ion Battery†[J]. Chem. J. Chinese Universities, 2018, 39(11): 2520.
Fig.2 Rate capability of lithium ion batteries with blank electrolyte and different concentration of electrolyte additivesElectrolyte additive: (A) BMTP; (B) TMBT1; (C) TMBT2.
Fig.3 Charge and discharge curves of lithium ion batteries with blank electrolyte and different additives(A) First-cycle with different additives; (B) different cycles with 1.0% BMTP; (C) different cycles with 1.0% TMBT1;(D) different cycles with 1.0% TMBT2.
Fig.6 Nyquist plot of lithium ion batteries with blank electrolyte and different electrolyte additives(A) After 2 cycles; (B) after 80 cycles. a. Blank electrolyte; b. 1.0% BMTP; c. 1.0% TMBT1; d. 1.0% TMBT2.
Fig.7 SEM images of graphite electrodes with blank electrolyte and electrolyte with different additives for lithium ion battery(A) Electrode before cycle; (B) electrode with blank electrolyte after 80 cycles; (C) electrode with electrolyte+1.0% BMTP after 80 cycles; (D) electrode with electrolyte+1.0% TMBT1 after 80 cycles; (E) electrode with electrolyte+1.0% TMBT2 after 80 cycles.
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