Characterization of cathode-electrolyte interface in all-solid-state batteries using TOF-SIMS, XPS, and UPS/LEIPS

被引:16
|
作者
Iida, Shin-ichi [1 ]
Terashima, Masahiro [1 ]
Mamiya, Kazutoshi [1 ]
Chang, Hsun-Yun [1 ]
Sasaki, Shunsuke [2 ]
Ono, Atsuo [2 ]
Kimoto, Takahito [2 ]
Miyayama, Takuya [1 ]
机构
[1] ULVAC PHI Inc, 2500 Hagisono, Chigasaki, Kanagawa 2538522, Japan
[2] ULVAC Inc, 2500 Hagisono, Chigasaki, Kanagawa 2538543, Japan
来源
关键词
LITHIUM; SPECTROSCOPY;
D O I
10.1116/6.0001044
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
In recent years, all-solid-state batteries (ASSBs) have been attracting attention as the next generation batteries for electric vehicles, energy storage systems, etc. Despite the growing interest, there are still many challenges faced in the commercial use of ASSBs. One of the biggest issues is the internal resistance, especially generated at the interface between solid electrolyte and electrode. The internal resistance at the interface limits the charge-discharge cycling performances. In order to solve this issue, it is necessary to examine the chemical and physical interactions at the interface. In this study, we have performed a detailed characterization of a LiPON/LiCoO2 interface using time-of-flight secondary ion mass spectrometry, x-ray photoelectron spectroscopy, ultraviolet photoelectron spectroscopy, and low-energy inverse photoelectron spectroscopy to obtain information on chemical species, chemical compositions, chemical states, and energy band diagrams. These powerful techniques have revealed that an interlayer between LiPON and LiCoO2 was formed due to the temperature rise during the manufacturing process. The temperature rise caused a change of the LiPON network structure and stimulated Co reduction in the LiCoO2 layer near the interface. Energy band diagram analysis suggests that the electron diffusion from LiPON to LiCoO2 may have triggered the reduction of Co. We concluded that the chemical changes that occur at the interface caused an increase in interfacial impedance. Preventing the chemical reduction of Co would be a key to minimize the internal resistance. In this article, the detailed chemical interactions between the LiPON and LiCoO2 layers will be discussed.
引用
收藏
页数:7
相关论文
共 50 条
  • [1] Fundamentals of the Cathode-Electrolyte Interface in All-solid-state Lithium Batteries
    Jiang, Yidong
    Lai, Anjie
    Ma, Jun
    Yu, Kai
    Zeng, Huipeng
    Zhang, Guangzhao
    Huang, Wei
    Wang, Chaoyang
    Chi, Shang-Sen
    Wang, Jun
    Deng, Yonghong
    [J]. CHEMSUSCHEM, 2023, 16 (09)
  • [2] Thermodynamics and Kinetics of the Cathode-Electrolyte Interface in All-Solid-State Li-S Batteries
    Chandrappa, Manas Likhit Holekevi
    Qi, Ji
    Chen, Chi
    Banerjee, Swastika
    Ong, Shyue Ping
    [J]. JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2022, 144 (39) : 18009 - 18022
  • [3] Passivation of the Cathode-Electrolyte Interface for 5 V-Class All-Solid-State Batteries
    Liu, Gaozhan
    Lu, Yong
    Wan, Hongli
    Weng, Wei
    Cai, Liangting
    Li, Zhe
    Que, Xiaochao
    Liu, Haijing
    Yao, Xiayin
    [J]. ACS APPLIED MATERIALS & INTERFACES, 2020, 12 (25) : 28083 - 28090
  • [4] Understanding the effects of chemical reactions at the cathode-electrolyte interface in sulfide based all-solid-state batteries
    Jung, Sung-Kyun
    Gwon, Hyeokjo
    Lee, Seok-Soo
    Kim, Hyunseok
    Lee, Jae Cheol
    Chung, Jae Gwan
    Park, Seong Yong
    Aihara, Yuichi
    Im, Dongmin
    [J]. JOURNAL OF MATERIALS CHEMISTRY A, 2019, 7 (40) : 22967 - 22976
  • [5] Reducing Gases Triggered Cathode Surface Reconstruction for Stable Cathode-Electrolyte Interface in Practical All-Solid-State Lithium Batteries
    Zhang, Bingkai
    He, Zhiwei
    Liu, Tiefeng
    Li, Zeheng
    Zhang, Shaojian
    Zhao, Wenguang
    Yin, Zu-Wei
    Zhuo, Zengqing
    Zhang, Mingjian
    Pan, Feng
    Zhang, Shanqing
    Lin, Zhan
    Lu, Jun
    [J]. ADVANCED MATERIALS, 2024, 36 (06)
  • [6] Revealing the role of the cathode-electrolyte interface on solid-state batteries
    Zahiri, Beniamin
    Patra, Arghya
    Kiggins, Chadd
    Yong, Adrian Xiao Bin
    Ertekin, Elif
    Cook, John B.
    Braun, Paul V.
    [J]. NATURE MATERIALS, 2021, 20 (10) : 1392 - +
  • [7] Progress and perspective of the cathode/electrolyte interface construction in all-solid-state lithium batteries
    Su, Shiming
    Ma, Jiabin
    Zhao, Liang
    Lin, Kui
    Li, Qidong
    Lv, Shasha
    Kang, Feiyu
    He, Yan-Bing
    [J]. CARBON ENERGY, 2021, 3 (06) : 866 - 894
  • [8] Agglomeration-free composite solid electrolyte and enhanced cathode-electrolyte interphase kinetics for all-solid-state lithium metal batteries
    Zhang, Zhouyu
    Zhang, Shu
    Geng, Shouxian
    Zhou, Shoubin
    Hu, Zhenglin
    Luo, Jiayan
    [J]. ENERGY STORAGE MATERIALS, 2022, 51 : 19 - 28
  • [9] Chemo-electrochemical Evolution of Cathode-Solid Electrolyte Interface in All-Solid-State Batteries
    Kwon, Patrick J.
    Juarez-Yescas, Carlos
    Jeong, Hyewon
    Moradi, Saeed
    Gao, Elizabeth
    Lawrence, Debbie
    Zahiri, Beniamin
    Braun, Paul V.
    [J]. ACS ENERGY LETTERS, 2024,
  • [10] Mixed ionic-electronic conductor enabled effective cathode-electrolyte interface in all solid state batteries
    Wang, Chengwei
    Zhang, Lei
    Xie, Hua
    Pastel, Glenn
    Dai, Jiaqi
    Gong, Yunhui
    Liu, Boyang
    Wachsman, Eric D.
    Hu, Liangbing
    [J]. NANO ENERGY, 2018, 50 : 393 - 400