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Characteristics of LiCoO2, LiMn2O4 and LiNi0.45Co0.1Mn0.45O2 as cathodes of lithium ion batteries 被引量:5
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作者 GUO Hua-jun LI Xin-hai ZHANG Xin-ming ZENG Su-ming WANG Zhi-xing PENG Wen-jie 《Journal of Central South University of Technology》 2005年第z1期44-49,共6页
LiNi0. 45 Co0. 10 Mn0. 4sO2 was synthesized from Li2CO3 and a triple oxide of nickel, cobalt and manganese at 950 ℃ in air. The structures and characteristics of LiNi0. 45 Co0.10 Mn0. 45 O2, LiCoO2 and LiMn2 O4 were ... LiNi0. 45 Co0. 10 Mn0. 4sO2 was synthesized from Li2CO3 and a triple oxide of nickel, cobalt and manganese at 950 ℃ in air. The structures and characteristics of LiNi0. 45 Co0.10 Mn0. 45 O2, LiCoO2 and LiMn2 O4 were investigated by XRD, SEM and electrochemical measurements. The results show that LiNi0.4s Co0.10 Mn0. 45 O2 has a layered structure with hexagonal lattice. The commercial LicoO2 has sphere-like appearance and smooth surfaces, while the LiMn2 O4 and LiNi0.45 Co0. 10 Mn0. 45 O2 consist of cornered and uneven particles. LiNi0. 45 Co0.10 Mn0. 45 O2 has a large disLiMn2 O4 and LiCoO2, respectively. LiCoO2 and LiMn2 O4 have higher discharge voltage and better rate-capability than LiNi0. 45Co0.10 Mn0. 45 O2. All the three cathodes have excellent cycling performance with capacity retention of above 89.3 % at the 250th cycle. Batteries with LiMn2 O4 or LiNi0.45 Co0.10 Mn0. 45 O2 cathodes show better safety performance under abusive conditions than those with LiCoO2 cathodes. 展开更多
关键词 lithium ion batteries CATHoDE LICoo2 LImn2o4 lini0. 45 co0. 10 mn0. 45 o2
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AlF_3包覆LiNi_(0.45)Mn_(0.45)Co_(0.10)O_2锂离子电池正极材料的结构表征和电化学性能研究 被引量:11
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作者 林和成 杨勇 《化学学报》 SCIE CAS CSCD 北大核心 2009年第2期104-108,共5页
通过共沉淀与固相反应法制备层状的LiNi0.45Mn0.45Co0.10O2,并利用X射线衍射(XRD)和电子扫描显微镜(SEM)测定材料的结构和形貌.在2.5~4.5V范围内,以0.1C(28mA·g-1)放电,LiNi0.45Mn0.45Co0.10O2正极材料的起始放电容量达到167.2mAh... 通过共沉淀与固相反应法制备层状的LiNi0.45Mn0.45Co0.10O2,并利用X射线衍射(XRD)和电子扫描显微镜(SEM)测定材料的结构和形貌.在2.5~4.5V范围内,以0.1C(28mA·g-1)放电,LiNi0.45Mn0.45Co0.10O2正极材料的起始放电容量达到167.2mAh·g-1,但循环性能较差.当采用AlF3包覆后,材料的循环性能得到明显改善.利用电化学阻抗谱(EIS)技术探索AlF3包覆对正极材料的电化学性能改善机理,实验结果表明:AlF3包覆层能够阻止电解液对正极材料的溶解和侵蚀,稳定其层状结构,同时降低了电极界面阻抗.因此AlF3包覆技术是一种改善LiNi0.45Mn0.45Co0.10O2材料电化学性能的有效方法和工具. 展开更多
关键词 lini0.45mn0.45co0.10o2 AIF3 正极材料 锂离子电池
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