Synthesis of Micron-Sized LiNi0.8Co0.1Mn0.1O2 and Its Application in Bimodal Distributed High Energy Density Li-Ion Battery Cathodes

被引:9
|
作者
Lin, Chia-Hsin [1 ]
Parthasarathi, Senthil-Kumar [1 ]
Bolloju, Satish [1 ]
Abdollahifar, Mozaffar [2 ,3 ]
Weng, Yu-Ting [4 ]
Wu, Nae-Lih [1 ,4 ]
机构
[1] Natl Taiwan Univ, Dept Chem Engn, Taipei 10617, Taiwan
[2] Tech Univ Carolo Wilhelmina Braunschweig, Inst Particle Technol, D-38104 Braunschweig, Germany
[3] Tech Univ Carolo Wilhelmina Braunschweig, Battery LabFactory Braunschweig BLB, Langer Kamp 19, D-38106 Braunschweig, Germany
[4] Natl Taiwan Univ, Adv Res Ctr Green Mat Sci & Technol, Taipei 10617, Taiwan
关键词
oxalate co-precipitation; smaller-sized NCM; ZrO2-modification; bimodal particle size distribution; volumetric energy density; ELECTROCHEMICAL PERFORMANCE; CALCINATION TEMPERATURE; 4.5; V; LITHIUM; STABILITY; CHEMISTRY; STORAGE;
D O I
10.3390/en15218129
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
The uniform and smaller-sized (similar to 3 mu m) LiNi0.8Co0.1Mn0.1O2 (SNCM) particles are prepared via a fast nucleation process of oxalate co-precipitation, followed by a two-step calcination procedure. It is found that the fast nucleation by vigorous agitation enables us to produce oxalate nuclei having a uniform size which then grow into micron-particles in less than a few minutes. The impacts of solution pH, precipitation time, calcination temperature, and surface modification with ZrO2 on the structural, morphological, and electrochemical properties of SNCM are systematically examined to identify the optimal synthetic conditions. A novel bimodal cathode design has been highlighted by using the combination of the SNCM particles and the conventional large (similar to 10 mu m) LiNi0.83Co0.12Mn0.05O2 (LNCM) particles to achieve the high volumetric energy density of cathode. The volumetric discharge capacity is found to be 526.6 mAh/cm(3) for the bimodal cathode L80% + S20%, whereas the volumetric discharge capacity is found to be only 480.3 and 360.6 mAh/cm(3) for L100% and S100% unimodal, respectively. Moreover, the optimal bi-modal cathode delivered higher specific energy (622.4 Wh/kg) and volumetric energy density (1622.6 Wh/L) than the L100% unimodal (596.1 Wh/kg and 1402.1 Wh/L) cathode after the 100th cycle. This study points to the promising utility of the SNCM material in Li-ion battery applications.
引用
收藏
页数:15
相关论文
共 50 条
  • [1] Glass ceramic coating on LiNi0.8Co0.1Mn0.1O2 cathode for Li-ion batteries
    Hyeong Seop Kang
    Palanisamy Santhoshkumar
    Jae Woo Park
    Gyu Sang Sim
    Murugan Nanthagopal
    Chang Woo Lee
    Korean Journal of Chemical Engineering, 2020, 37 : 1331 - 1339
  • [2] Influence of Atmosphere on Electrochemical Performance of LiNi0.8Co0.1Mn0.1O2 Electrodes for Li-Ion Batteries
    Wang, Ran
    Wang, Jing
    Chen, Shi
    Gao, Ang
    Su, Yuefeng
    Wu, Feng
    5TH ANNUAL INTERNATIONAL CONFERENCE ON MATERIAL SCIENCE AND ENVIRONMENTAL ENGINEERING (MSEE2017), 2018, 301
  • [3] Synthesis of single-crystal LiNi0.8Co0.1Mn0.1O2 materials for Li-ion batteries by microfluidic technology
    Liang, Wenbiao
    Jin, Feng
    Zhao, Yin
    Shi, Liyi
    Liu, Quan
    Wang, Zhuyi
    Wang, Yi
    Zhang, Meihong
    Zhu, Jiefang
    Yuan, Shuai
    CHEMICAL ENGINEERING JOURNAL, 2023, 464
  • [4] Electron/ion Conductor Double-coated LiNi0.8Co0.1Mn0.1O2 Li-ion Battery Cathode Material and Its Electrochemical Performance
    Chen Shouxiao
    Chen Junke
    Zheng Weichen
    Wei Guozhen
    Zhou Yao
    Li Juntao
    ACTA CHIMICA SINICA, 2022, 80 (04) : 485 - 493
  • [5] Hydrothermal Synthesis of Tunable Olive-Like Ni0.8Co0.1Mn0.1CO3 and its Transformation to LiNi0.8Co0.1Mn0.1O2 Cathode Materials for Li-Ion Batteries
    Lu, Yan
    Gan, Zhanggen
    Xia, Jin
    Du, Ke
    Peng, Zhongdong
    Cao, Yanbing
    Hu, Guorong
    Xiao, Jin
    CHEMELECTROCHEM, 2019, 6 (22) : 5661 - 5670
  • [6] Ni-rich LiNi0.8Co0.1Mn0.1O2 coated with Li-ion conductive Li3PO4 as competitive cathodes for high-energy-density lithium ion batteries
    Zhang, Wenheng
    Liang, Longwei
    Zhao, Fei
    Liu, Yang
    Hou, Linrui
    Yuan, Changzhou
    ELECTROCHIMICA ACTA, 2020, 340
  • [7] Synthesis and Characterization of Spherical LiNi0.8Co0.1Mn0.1O2 Particles with a High Tap-density
    Lu Lei
    Zhong Wei-Pan
    Yang Hui
    JOURNAL OF INORGANIC MATERIALS, 2012, 27 (03) : 258 - 264
  • [8] Equation of state of LiNi0.8Co0.1Mn0.1O2 at high pressure
    Xiong, Lun
    Chen, Guangping
    Wu, Shiyun
    Zhu, Jinxia
    Li, Ji
    Wu, Xuebing
    Liu, Xingquan
    Shu, Xiaohui
    Tian, Can
    Zhang, Xinxin
    Yu, Guoliang
    Bai, Ligang
    Cui, Weiran
    SOLID STATE COMMUNICATIONS, 2019, 299
  • [9] Three-dimensional Li-ion transportation in Li2MnO3-integrated LiNi0.8Co0.1Mn0.1O2
    Huang, Xue
    Zhao, Jianqing
    Zhu, Wenchang
    Hou, Machuan
    Zhou, Tong
    Bu, Liangmin
    Gao, Lijun
    Zhang, Wei
    JOURNAL OF ENERGY CHEMISTRY, 2021, 63 : 376 - 384
  • [10] Three-dimensional Li-ion transportation in Li2MnO3-integrated LiNi0.8Co0.1Mn0.1O2
    Huang, Xue
    Zhao, Jianqing
    Zhu, Wenchang
    Hou, Machuan
    Zhou, Tong
    Bu, Liangmin
    Gao, Lijun
    Zhang, Wei
    Journal of Energy Chemistry, 2021, 63 : 376 - 384