Lithium silicon tin oxynitride (LiySiTON):: high-performance anode in thin-film lithium-ion batteries for microelectronics

被引:123
|
作者
Neudecker, BJ [1 ]
Zuhr, RA [1 ]
Bates, JB [1 ]
机构
[1] Oak Ridge Natl Lab, Div Solid State, Oak Ridge, TN 37831 USA
关键词
silicon tin oxynitride (SiTON); lithium-ion battery; solder reflow; microelectronics; heat treatment; hysteresis;
D O I
10.1016/S0378-7753(98)00202-X
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
A lithium-ion thin-film battery, consisting of the amorphous silicon tin oxynitride anode ('SiTON'), the amorphous lithium phosphorus oxynitride electrolyte ('Lipon'), and a crystalline LiCoO2 cathode, can be heated at 250 degrees C in air for 1 h which exceeds by far the required solder reflow conditions for electronic circuit assembly. Moreover, the performance of such a battery was found to even improve after the heat treatment. The LiySiTON profile between 0 and 1.2 V vs. Li was determined in SiTON/Lipon/LiCoO2 lithium-ion thin-film cells equipped with a Li metal reference electrode. By comparison with a Sn3N4/Lipon/LiCoO2 three-electrode lithium-ion thin-film cell, a model for the electrochemical insertion/extraction process of LiySiTON was suggested. The SiTON/Lipon/LiCoO2 cells sustained 5 mA/cm(2) between 4.2 and 2.7 V while the anode supplied a reversible discharge capacity of about 340 mu A h/mg or even 450 CLA h/mg after heating at 250 degrees C in air for 1 h. A long-termcycling stability test of a SiTON/Lipon/LiCoO2 battery between 3.93 and 2.7 V demonstrated that the LiySiTON capacity faded only by 0.001% per cycle when charging was stopped as soon as the LiySiTON potential reached 0 V vs. Li. When this cathode-heavy cell was charged to 4.1 V (LiySiTON at 0 V vs. Li), a significantly higher reversible discharge capacity was obtained over similar to 5000 cycles. (C) 1999 Elsevier Science S.A. All rights reserved.
引用
收藏
页码:27 / 32
页数:6
相关论文
共 50 条
  • [21] A scalable synthesis of silicon nanoparticles as high-performance anode material for lithium-ion batteries
    Jin Li
    Juan-Yu Yang
    Jian-Tao Wang
    Shi-Gang Lu
    RareMetals, 2019, 38 (03) : 199 - 205
  • [22] A scalable synthesis of silicon nanoparticles as high-performance anode material for lithium-ion batteries
    Li, Jin
    Yang, Juan-Yu
    Wang, Jian-Tao
    Lu, Shi-Gang
    RARE METALS, 2019, 38 (03) : 199 - 205
  • [23] A Versatile Polymeric Precursor to High-Performance Silicon Composite Anode for Lithium-Ion Batteries
    Yang, Kai
    Yu, Zhihao
    Yu, Changcheng
    Zhu, Min
    Yang, Luyi
    Chen, Haibiao
    Pan, Feng
    ENERGY TECHNOLOGY, 2019, 7 (07)
  • [24] Atomic layer deposited aluminum oxynitride coating for high-performance Si anode in lithium-ion batteries
    Zhu, Hongzheng
    Shiraz, Mohammad Hossein Aboonasr
    Liu, Liang
    Zhang, Yue
    Liu, Jian
    APPLIED SURFACE SCIENCE, 2022, 578
  • [25] Formation and study of thin-film lithium-ion batteries using CNT/silicon composite material as an anode
    Kitsyuk E.P.
    Kulova T.L.
    Pavlov A.A.
    Skundin A.M.
    Russian Microelectronics, 2017, 46 (2) : 88 - 94
  • [26] Silver: high performance anode for thin film lithium ion batteries
    Taillades, G
    Sarradin, J
    JOURNAL OF POWER SOURCES, 2004, 125 (02) : 199 - 205
  • [27] A high-performance Cu-doped vanadium pentoxide thin-film cathode for lithium-ion batteries
    Li, Yuyao
    Zhang, Fan
    Gao, Wei
    Zhan, Zhaolin
    IONICS, 2021, 27 (06) : 2335 - 2344
  • [28] A high-performance Cu-doped vanadium pentoxide thin-film cathode for lithium-ion batteries
    Yuyao Li
    Fan Zhang
    Wei Gao
    Zhaolin Zhan
    Ionics, 2021, 27 : 2335 - 2344
  • [29] Novel silicon nanowire film on copper foil as high performance anode for lithium-ion batteries
    Wang, Xin
    Huang, Lanyan
    Zhang, Yongguang
    Yin, Fuxing
    Bakenov, Zhumabay
    Umirov, Nurzhan
    Jin, Mingliang
    Zhou, Guofu
    IONICS, 2018, 24 (02) : 373 - 378
  • [30] Novel silicon nanowire film on copper foil as high performance anode for lithium-ion batteries
    Xin Wang
    Lanyan Huang
    Yongguang Zhang
    Fuxing Yin
    Zhumabay Bakenov
    Nurzhan Umirov
    Mingliang Jin
    Guofu Zhou
    Ionics, 2018, 24 : 373 - 378