Synthesis of LiNiO2 cathode by the combustion method

被引:0
|
作者
MYOUNGYOUP SONG
IKHYUN KWON
HUNUK KIM
SUNGBO SHIM
DANIEL R. MUMM
机构
[1] Engineering Research Institute,Division of Advanced Materials Engineering, Research Center of Advanced Materials Development
[2] Chonbuk National University,Department of Chemical Engineering and Materials Science
[3] University of California,undefined
来源
Journal of Applied Electrochemistry | 2006年 / 36卷
关键词
Discharge Capacity; Cathode Material; Solid State Ionic; Voltage Range; Cycling Performance;
D O I
暂无
中图分类号
学科分类号
摘要
To determine optimum conditions for the synthesis of LiNiO2 by the combustion method, syntheses were carried out in air and under oxygen at various calcination temperatures and for different times. The electrochemical properties of the prepared samples were then investigated. The optimum conditions are preheating at 400 °C for 30 min in air in the mole ratio of urea to nitrate 3.6 and calcination at 750 °C for 36 h under O2. The LiNiO2 synthesized under these conditions had a first discharge capacity of 189 mAh g−1 at 0.1 C-rate and relatively good cycling performance. This sample has a larger value of I003/I104 (smaller cation mixing) and a smaller R-factor (larger hexagonal ordering). Cycling performance was investigated in various voltage ranges. The first discharge capacity increased as the upper limit of the voltage range rose. The first discharge capacity was small but cycling performance was good when the sample was cycled in the voltage range with the lowest upper limit.
引用
收藏
页码:801 / 805
页数:4
相关论文
共 50 条
  • [21] Synthesis and thermal decomposition kinetics of LiNiO2
    田彦文
    李辉
    张新
    瞿玉春
    高虹
    Transactions of Nonferrous Metals Society of China, 2002, (01) : 127 - 131
  • [22] Electrochemical properties of LiNiO2 substituted by Al or Ti for Ni via the combustion method
    Kwon, Sung Nam
    Song, Myoung Youp
    Park, Hye Ryoung
    CERAMICS INTERNATIONAL, 2014, 40 (09) : 14141 - 14147
  • [23] Electrochemical characterizations of Fe-substituted LiNiO2 synthesized in air by the combustion method
    Song, MyoungYoup
    Kwon, IkHyun
    Shim, Sungbo
    Song, Ji Hong
    CERAMICS INTERNATIONAL, 2010, 36 (04) : 1225 - 1231
  • [24] Synthesis and thermal decomposition kinetics of LiNiO2
    Tian, YW
    Li, H
    Zhang, X
    Zhai, YC
    Gao, H
    TRANSACTIONS OF NONFERROUS METALS SOCIETY OF CHINA, 2002, 12 (01) : 127 - 131
  • [25] Electrochemical properties of LiNiO2 and LiNiO2 substituted with Ga, Al and/or Ti
    Park, Hye Ryoung
    JOURNAL OF INDUSTRIAL AND ENGINEERING CHEMISTRY, 2010, 16 (05) : 698 - 702
  • [26] Investigation of LiNiO2 as cathode material for lithium ion battery synthesized by a molten salt method
    Chang, Zhao-Rong
    Qi, Xia
    Wu, Feng
    Tang, Hong-Wei
    Xu, Qiu-Hong
    Gongneng Cailiao/Journal of Functional Materials, 2006, 37 (06): : 896 - 897
  • [27] Synthesis of LiNiO2 by two-step solid-state method
    Li, Shuiping
    Wu, Qisheng
    Zhang, Chun
    Zhu, Huajun
    Zhang, Changsen
    Wang, Xin
    Kong, Cancan
    MATERIALS SCIENCE-POLAND, 2018, 36 (01): : 107 - 111
  • [28] Synthesis and properties of gallium-doped LiNiO2 as the cathode material for lithium secondary batteries
    Nishida, Y
    Nakane, Y
    Satoh, T
    JOURNAL OF POWER SOURCES, 1997, 68 (02) : 561 - 564
  • [29] Compton scattering study of strong orbital delocalization in a LiNiO2 cathode
    Kothalawala, Veenavee Nipunika
    Suzuki, Kosuke
    Nokelainen, Johannes
    Hyvonen, Arttu
    Makkonen, Ilja
    Barbiellini, Bernardo
    Hafiz, Hasnain
    Tynjala, Pekka
    Laine, Petteri
    Valikangas, Juho
    Hu, Tao
    Lassi, Ulla
    Takano, Kodai
    Tsuji, Naruki
    Amada, Yosuke
    Devi, Assa Aravindh Sasikala
    Alatalo, Matti
    Sakurai, Yoshiharu
    Sakurai, Hiroshi
    Bansil, Arun
    PHYSICAL REVIEW B, 2024, 109 (03)
  • [30] There and Back Again-The Journey of LiNiO2 as a Cathode Active Material
    Bianchini, Matteo
    Roca-Ayats, Maria
    Hartmann, Pascal
    Brezesinski, Torsten
    Janek, Juergen
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2019, 58 (31) : 10434 - 10458