3D electrode architectures for high energy and high power lithium-ion batteries

被引:2
|
作者
Pfleging, W. [1 ]
机构
[1] Karlsruhe Inst Technol, IAM AWP, POB 3640, D-76021 Karlsruhe, Germany
关键词
lithium-ion battery; 3D battery; electrode manufacturing; laser structuring; silicon-based anode; lithium nickel manganese cobalt oxide; laser-induced breakdown spectroscopy; roll-to-roll processing; INDUCED BREAKDOWN SPECTROSCOPY; PERFORMANCE; CHALLENGES; ANODES;
D O I
10.1117/12.2623655
中图分类号
S2 [农业工程];
学科分类号
0828 ;
摘要
There is worldwide a strong effort to increase energy and power density on battery level for future electric vehicles. In addition, the demand for cost efficient, reliable, and long lifetime lithium-ion batteries (LIB) is continuous increasing. For the development of next-generation LIB a new scientific-technical approach was established by merging the 3D battery concept with high mass-loaded electrodes. The 3D battery concept is realized by laser structuring of electrodes and has a huge impact on high rate capability and lifetime of lithium-ion batteries. In frame of process up-scaling, ultrafast laser ablation including roll-to-roll processing was established for thick film electrodes without damaging the active material. Post-mortem studies using laser-induced breakdown spectroscopy were carried out to study degradation processes and to illustrate the formation of new lithium diffusion pathways in 3D electrodes. The studies were performed with lithium nickel manganese cobalt oxide as cathode and graphite/silicon as anode. Silicon has the benefit to provide one order of magnitude higher gravimetric energy density than the common used graphite. However, a bottleneck of silicon is its huge volume change of 300 % during electrochemical cycling. High mechanical tension may arise, which results in crack formation, continuous formation of solid electrolyte interphase, and subsequent electrode delamination. It was shown that batteries with laser structured electrodes benefit from a homogenous lithiation and delithiation, reduced compressive stress, and overall improved electrochemical properties in comparison to batteries with unstructured electrodes. A new manufacturing tool is presented for next-generation battery production to overcome current limitations in electrode design and cell performance.
引用
收藏
页数:10
相关论文
共 50 条
  • [21] 3D Porous Sponge-Inspired Electrode for Stretchable Lithium-Ion Batteries
    Liu, Wei
    Chen, Zheng
    Zhou, Guangmin
    Sun, Yongming
    Lee, Hye Ryoung
    Liu, Chong
    Yao, Hongbin
    Bao, Zhenan
    Cui, Yi
    ADVANCED MATERIALS, 2016, 28 (18) : 3578 - +
  • [22] 3D intermetallic anodes for Lithium-ion batteries
    Nurpeissova, A.
    Murat, E.
    Adi, A.
    Bakenov, Z.
    MATERIALS TODAY-PROCEEDINGS, 2018, 5 (11) : 22877 - 22881
  • [23] Flexible 3D Porous MXene Foam for High-Performance Lithium-Ion Batteries
    Zhao, Qian
    Zhu, Qizhen
    Miao, Jiawei
    Zhang, Peng
    Wan, Pengbo
    He, Lingzhang
    Xu, Bin
    SMALL, 2019, 15 (51)
  • [24] Flexible 3D Interlocking Lithium-Ion Batteries
    Cha, Hyungyeon
    Lee, Yoonji
    Kim, Junhyeok
    Park, Minjoon
    Cho, Jaephil
    ADVANCED ENERGY MATERIALS, 2018, 8 (30)
  • [25] 3D conductive iron fluoride (III) cathode with high loading for lithium-ion batteries
    Jiang, Qinting
    Li, Xifei
    Li, Jun
    Wang, Jingjing
    Cao, Guiqiang
    Duan, Ruixian
    Zhang, Zheng
    Cao, Yanyan
    Li, Wenbin
    Hu, Junhua
    JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2023, 56 (05)
  • [26] Silicon-based 3D Electrodes for High Power Lithium-ion Battery
    Zheng, Y.
    Smyrek, P.
    Rakebrandt, J. -H.
    Seifert, H. J.
    Pfleging, W.
    Smyrek, P.
    Kuebel, Ch.
    2017 IEEE INTERNATIONAL CONFERENCE ON MANIPULATION, MANUFACTURING AND MEASUREMENT ON THE NANOSCALE (3M-NANO), 2017, : 61 - 64
  • [27] Engineering defect-enabled 3D porous MoS2/C architectures for high performance lithium-ion batteries
    Tao, Kai
    Wang, Xiangfei
    Xu, Yifeng
    Liu, Jing
    Song, Xuefeng
    Fu, Chaopeng
    Chen, Xiaoqi
    Qu, Xingzhou
    Zhao, Xiaofeng
    Gao, Lian
    JOURNAL OF THE AMERICAN CERAMIC SOCIETY, 2020, 103 (08) : 4453 - 4462
  • [28] 3D Porous Sponge-Inspired Electrode for High-Energy and High-Power Zinc-Ion Batteries
    Wang, Chunyan
    Wang, Mingqiang
    Liu, Li
    Huang, Yudong
    ACS APPLIED ENERGY MATERIALS, 2021, 4 (02) : 1833 - 1839
  • [29] Graphene-Based Hybrid Electrode Material for High-Power Lithium-Ion Batteries
    Kim, Haegyeom
    Kim, Sung-Wook
    Hong, Jihyun
    Lim, Hee-Dae
    Kim, Hyung Sub
    Yoo, Jung-Keun
    Kang, Kisuk
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2011, 158 (08) : A930 - A935
  • [30] High thermal conductivity negative electrode material for lithium-ion batteries
    Maleki, H
    Selman, JR
    Dinwiddie, RB
    Wang, H
    JOURNAL OF POWER SOURCES, 2001, 94 (01) : 26 - 35