通过对MCMB为负极、LiCoO2为正极、金属锂为参比电极的AA型三电极锂离子电池的性能测试及正负极对锂参比电极的电位测试,并结合X R D和SEM实验,研究了过放电对MCMB-LiCoO2锂离子电池性能的影响。结果表明:当M CMB-LiCoO2电池过放至0.0伏...通过对MCMB为负极、LiCoO2为正极、金属锂为参比电极的AA型三电极锂离子电池的性能测试及正负极对锂参比电极的电位测试,并结合X R D和SEM实验,研究了过放电对MCMB-LiCoO2锂离子电池性能的影响。结果表明:当M CMB-LiCoO2电池过放至0.0伏时,负极MCMB表面上的SEI膜被损坏,集流体铜箔的腐蚀溶解较严重,再次形成的SEI膜的性能可能较差,这使负极阻抗增大,极化增强,相应地使电池在过放电以后的循环过程中的放电容量、放电电压和充放电效率大为降低。但过放电对MCMB的结构和正极性能没有影响。展开更多
As an improvement on the conventional two-layer electrode (active material layerlcurrent collector), a novel sandwich-like three-layer electrode (conductive layerlactive material layertcurrent collector) for catho...As an improvement on the conventional two-layer electrode (active material layerlcurrent collector), a novel sandwich-like three-layer electrode (conductive layerlactive material layertcurrent collector) for cathode material LiFePO4/C was introduced in order to improve its electrochemical performance. LiFePO4/C in the three-layer electrode exhibited superior rate capability in comparison with that in the two-layer electrode in accordance with charge-discharge examination. Cyclic voltammetry and electrochemical impedance spectroscopy indicated that Fe3+/Fe2+ redox couple for LiFePO4 in the three-layer electrode displayed faster kinetics, better reversibility and much lower charge transfer resistance than that in the two-layer electrode in electrochemical process. For three-layer electrode, the holes in the surface of active material layer were filled by smaller acetylene black grains, which formed electrical connections and provided more pathways to electron transport to/from LiFePO4/C particles exposed to the bulk electrolyte.展开更多
文摘通过对MCMB为负极、LiCoO2为正极、金属锂为参比电极的AA型三电极锂离子电池的性能测试及正负极对锂参比电极的电位测试,并结合X R D和SEM实验,研究了过放电对MCMB-LiCoO2锂离子电池性能的影响。结果表明:当M CMB-LiCoO2电池过放至0.0伏时,负极MCMB表面上的SEI膜被损坏,集流体铜箔的腐蚀溶解较严重,再次形成的SEI膜的性能可能较差,这使负极阻抗增大,极化增强,相应地使电池在过放电以后的循环过程中的放电容量、放电电压和充放电效率大为降低。但过放电对MCMB的结构和正极性能没有影响。
基金Project(2010ZCO51)supported by Natural Science Foundation of Yunnan ProvinceProject supported by Analysis and Testing Foundation(2009-041)Starting Research Fund(14118245)from Kunming University of Science and Technology
文摘As an improvement on the conventional two-layer electrode (active material layerlcurrent collector), a novel sandwich-like three-layer electrode (conductive layerlactive material layertcurrent collector) for cathode material LiFePO4/C was introduced in order to improve its electrochemical performance. LiFePO4/C in the three-layer electrode exhibited superior rate capability in comparison with that in the two-layer electrode in accordance with charge-discharge examination. Cyclic voltammetry and electrochemical impedance spectroscopy indicated that Fe3+/Fe2+ redox couple for LiFePO4 in the three-layer electrode displayed faster kinetics, better reversibility and much lower charge transfer resistance than that in the two-layer electrode in electrochemical process. For three-layer electrode, the holes in the surface of active material layer were filled by smaller acetylene black grains, which formed electrical connections and provided more pathways to electron transport to/from LiFePO4/C particles exposed to the bulk electrolyte.