• International Journal of Extreme Manufacturing
  • Vol. 5, Issue 3, 35004 (2023)
1, 2, 3, 3..., 4 and 1,4,*|Show fewer author(s)
Author Affiliations
  • 1Department of Materials and Life Chemistry, Kanagawa University, 3-27-1, Rokkakubashi, Kanagawa-ku, Yokohama, Kanagawa 221-8686, Japan
  • 2Wired Co., Ltd, 2-4-15 kitashinbo, Sanjo, Niigata 955-0861, Japan
  • 3Department of Electrical and Electronic Systems Engineering, National Institute of Technology, Nagaoka College, 888 Nishikatakai, Nagaoka, Niigata 940-8532, Japan
  • 4Research Institute for Engineering, Kanagawa University, 3-27-1, Rokkakubashi, Kanagawa-ku, Yokohama, Kanagawa 221-8686, Japan
  • show less
    DOI: 10.1088/2631-7990/acd917 Cite this Article
    [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese]. Development of a roll-to-roll high-speed laser micro processing machine for preparing through-holed anodes and cathodes of lithium-ion batteries[J]. International Journal of Extreme Manufacturing, 2023, 5(3): 35004 Copy Citation Text show less
    References

    [1] KimTH,ParkJS,ChangSK,ChoiS,RyuJHandSongHK 2012 The current move of lithium ion batteries towards the next phase Adv. Energy Mater. 2 860–72

    [2] Nitta N, Wu F X, Lee J T and Yushin G 2015 Li-ion battery materials: present and future Mater. Today 18 252–64

    [3] WangXF, LuXH,LiuB,ChenD,TongYX andShenGZ 2014 Flexible energy-storage devices: design consideration and recent progress Adv. Mater. 26 4763–82

    [4] TangYX,ZhangYY, LiWL,MaBandChenXD2015 Rational material design for ultrafast rechargeable lithium-ion batteries Chem. Soc. Rev. 44 5926–40

    [5] Winter M and Brodd R J 2004 What are batteries, fuel cells, and supercapacitors? Chem. Rev. 104 4245–70

    [6] Kang K, Meng Y S, Bréger J, Grey C P and Ceder G 2006 Electrodes with high power and high capacity for rechargeable lithium batteries Science 311 977–80

    [7] KimDW, JoWY, ParkCW, HwangSM,Yoo JBand Kim Y J 2020 Effect of electrode design parameters on the rate performance of LiNi0.6Co0.2Mn0.2O2 cathodes using pulse measurements Electrochim. Acta 341 135936

    [8] Appiah W A, Park J, Song S, Byun S, Ryou M H and Lee Y M 2016 Design optimization of LiNi0.6Co0.2Mn0.2O2/graphite lithium-ion cells based on simulation and experimental data J. Power Sources 319 147–58

    [9] Dubal D P, Ayyad O, Ruiz V and Gómez-Romero P 2015 Hybrid energy storage: the merging of battery and supercapacitor chemistries Chem. Soc. Rev. 44 1777–90

    [10] Li Z H, Wei X M and Yang Z M 2023 Pulsed laser 3D-micro/nanostructuring of materials for electrochemical energy storage and conversion Prog. Mater. Sci. 133 101052

    [11] Bolsinger M, Weller M, Ruck S, Kaya P, Riegel H and Knoblauch V 2020 Selective surface treatment by means of IR-laser-A new approach to enhance the rate capability of cathodes for Li-ion batteries Electrochim. Acta 330 135163

    [12] Berhe M G and Lee D 2021 A comparative study on the wettability of unstructured and structured LiFePO4 with nanosecond pulsed fiber laser Micromachines 12 582

    [13] Chen K H et al 2020 Efficient fast-charging of lithium-ion batteries enabled by laser-patterned three-dimensional graphite anode architectures J. Power Sources 471 228475

    [14] Park J, Jeon C, Kim W, Bong S J, Jeong S and Kim H J 2021 Challenges, laser processing and electrochemical characteristics on application of ultra-thick electrode for high-energy lithium-ion battery J. Power Sources 482 228948

    [15] Tsuda T et al 2018 Improvement of high-rate charging/discharging performance of a lithium ion battery composed of laminated LiFePO4 cathodes/ graphite anodes having porous electrode structures fabricated with a pico-second pulsed laser Electrochim. Acta 291 267–77

    [16] Tsuda T et al 2019 Improvement of high-rate performance of LiFePO4 cathode with through-holed LiFePO4/ACTIVATED carbon hybrid electrode structure fabricated with a pico-second pulsed laser Electrochim. Acta 298 827–34

    [17] Matsumoto F, Yamada M, Tsuta M, Nakamura S, Ando N and Soma N 2023 Review of the structure and performance of through-holed anodes and cathodes prepared with a picosecond pulsed laser for lithium-ion batteries Int. J. Extrem. Manuf. 5 012001

    [18] Mangang M, Seifert H J and Pfleging W 2016 Influence of laser pulse duration on the electrochemical performance of laser structured LiFePO4 composite electrodes J. Power Sources 304 24–32

    [19] Pr.ll J, Kim H, Piqué A, Seifert H J and Pfleging W 2014 Laser-printing and femtosecond-laser structuring of LiMn2O4 composite cathodes for Li-ion microbatteries J. Power Sources 255 116–24

    [20] Dunlap N et al 2022 Laser ablation for structuring Li-ion electrodes for fast charging and its impact on material properties, rate capability, Li plating, and wetting J. Power Sources 537 231464

    [21] Hille L, Toepper H C, Schriever C, Kriegler J, Keilhofer J, Noecker M P and Zaeh M F 2022 Influence of laser structuring and calendering of graphite anodes on electrode properties and cell performance J. Electrochem. Soc. 169 060518

    [22] Park J, Song H, Jang I, Lee J, Um J, Bae S G, Kim J, Jeong S and Kim H J 2022 Three-dimensionalization via control of laser-structuring parameters for high energy and high power lithium-ion battery under various operating conditions J. Energy Chem. 64 93–102

    [23] Pfleging W 2021 Recent progress in laser texturing of battery materials: a review of tuning electrochemical performances, related material development, and prospects for large-scale manufacturing Int. J. Extrem. Manuf. 3 012002

    [24] Tsuda T, Ando N, Nakamura S, Ishihara Y, Hayashi N, Soma N, Gunji T, Tanabe T, Ohsaka T and Matsumoto F 2019 Improvement of high-rate discharging performance of LiFePO4 cathodes by forming micrometer-sized through-holed electrode structures with a pico-second pulsed laser Electrochim. Acta 296 27–38

    [25] Watanabe T, Tsuda T, Ando N, Nakamura S, Hayashi N, Soma N, Gunji T, Ohsaka T and Matsumoto F 2019 An improved pre-lithiation of graphite anodes using through-holed cathode and anode electrodes in a laminated lithium ion battery Electrochim. Acta 324 134848

    [26] Tsuda T, Ishihara Y, Watanabe T, Ando N, Gunji T, Soma N, Nakamura S, Hayashi N, Ohsaka T and Matsumoto F 2019 An improved high-rate discharging performance of ‘unbalanced’ LiFePO4 cathodes with different LiFePO4 loadings by a grid-patterned micrometer size-holed electrode structuring Electrochemistry 87 370–8

    [27] Tsuda T, Ando N, Mitsuhashi N, Tanabe T, Itagaki K, Soma N, Nakamura S, Hayashi N and Matsumoto F 2017 Fabrication of porous electrodes with a picosecond pulsed laser and improvement of the rate performance of a porous graphite anode and LiFePO4 cathode ECS Trans. 80 1391–7

    [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese]. Development of a roll-to-roll high-speed laser micro processing machine for preparing through-holed anodes and cathodes of lithium-ion batteries[J]. International Journal of Extreme Manufacturing, 2023, 5(3): 35004
    Download Citation