Design, production, and characterization of three-dimensionally-structured oxide-polymer composite cathodes for all-solid-state batteries Polymer composite cathodes for all-solid-state batteries

被引:17
作者
Kriegler, Johannes [1 ]
Jaimez-Farnham, Elena [1 ]
Scheller, Maximilian [2 ]
Dashjav, Enkhtsetseg [3 ]
Konwitschny, Fabian [1 ]
Wach, Lovis [1 ]
Hille, Lucas [1 ]
Tietz, Frank [3 ,4 ]
Zaeh, Michael F. [1 ]
机构
[1] Tech Univ Munich, Inst Machine Tools & Ind Management, TUM Sch Engn & Design, Dept Mech Engn, Boltzmannstr 15, D-85748 Garching, Germany
[2] Tech Univ Munich, Inst Elect Energy Storage Technol, TUM Sch Engn & Design, Dept Energy & Proc Engn, Arcisstra e 21, D-80333 Munich, Germany
[3] Forschungszentrum Julich, Inst Energy & Climate Res, IEK 1 Mat Synth & Proc, Julich, Germany
[4] Forschungszentrum Julich, Inst Energy & Climate Res, IEK 12 Helmholtz Inst Munster, Julich, Germany
关键词
All-solid-state battery; Composite cathode; Solid electrolyte; Oxide; Polymer; Hybrid; Laser ablation; Infiltration; LITHIUM-ION; ENERGY DENSITY; ELECTROLYTE; METAL; COMPATIBILITY; FABRICATION; ANODES;
D O I
10.1016/j.ensm.2023.03.008
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
Inorganic all-solid-state batteries with oxide electrolytes show improved safety compared to conventional lithium-ion batteries due to the application of a non-flammable solid electrolyte. However, the currently applied production methods are unsuitable for creating oxide composite cathodes with a good interfacial contact between the solid electrolyte and the cathode active material, which limits the accessible discharge capacity. Thus, solid electrolyte matrix-supported all-solid-state batteries, for which a porous scaffold is filled with cathode active material, have recently seen increasing research interest. This publication introduces a scalable production route for a matrix-supported cell concept with a three-dimensionally-structured oxide-based composite cathode. Directed microstructures with different geometries were introduced into NASICON-type Li1.5Al0.5Ti1.5(PO4)(3) oxide solid electrolyte layers via laser ablation. The obtained porous scaffold was infiltrated with various cathode slurries containing cathode active material and an ion-conducting polymer electrolyte to fabricate hybrid composite cathodes with an improved electrode-electrolyte interface. Scanning electron microscopy and energy-dispersive X-ray spectroscopy confirmed a high pore filling degree. A promising specific discharge capacity of 120.1 mAh.g(-1) was achieved during electrochemical testing of a prototype all-solid-state battery with a LiNi0.6Mn0.2Co0.2O2 composite cathode and a lithium metal anode. Overall, this work serves as a proof-of-concept for the novel, matrix-supported cell design and provides insights into the production processes involved.
引用
收藏
页码:607 / 617
页数:11
相关论文
共 50 条
[41]   Stimulating the electrostatic interactions in composite cathodes using a slurry-fabricable polar binder for practical all-solid-state batteries [J].
Jeong, Woo-Hyun ;
Kim, Hyerim ;
Kansara, Shivam ;
Lee, Seungwon ;
Agostini, Marco ;
Kim, Kyungsu ;
Hwang, Jang-Yeon ;
Jung, Yun-Chae .
ENERGY STORAGE MATERIALS, 2024, 73
[42]   Tailoring Practically Accessible Polymer/Inorganic Composite Electrolytes for All-Solid-State Lithium Metal Batteries: A Review [J].
Hongmei Liang ;
Li Wang ;
Aiping Wang ;
Youzhi Song ;
Yanzhou Wu ;
Yang Yang ;
Xiangming He .
Nano-Micro Letters, 2023, 15
[43]   Progress and Challenges of Ni-Rich Layered Cathodes for All-Solid-State Lithium Batteries [J].
Zheng, Haonan ;
Peng, Shuang ;
Liang, Suzhe ;
Yang, Weiyou ;
Chen, Chaoyi ;
Wang, Changhong ;
Yu, Ruizhi .
ADVANCED FUNCTIONAL MATERIALS, 2025, 35 (16)
[44]   The influence of void space on ion transport in a composite cathode for all-solid-state batteries [J].
Hlushkou, Dzmitry ;
Reising, Arved E. ;
Kaiser, Nico ;
Spannenberger, Stefan ;
Schlabach, Sabine ;
Kato, Yuki ;
Roling, Bernhard ;
Tallarek, Ulrich .
JOURNAL OF POWER SOURCES, 2018, 396 :363-370
[45]   Performance Evaluation of Composite Electrolyte with GQD for All-Solid-State Lithium Batteries [J].
Hwang, Sung Won ;
Hong, Dae-Ki .
CMC-COMPUTERS MATERIALS & CONTINUA, 2023, 74 (01) :55-66
[46]   Interfacial and cycle stability of sulfide all-solid-state batteries with Ni-rich layered oxide cathodes [J].
Wang, Jiacheng ;
Zhang, Zhenyu ;
Han, Jiufang ;
Wang, Xuefeng ;
Chen, Liquan ;
Li, Hong ;
Wu, Fan .
NANO ENERGY, 2022, 100
[47]   Protecting lithium metal anode in all-solid-state batteries with a composite electrolyte [J].
Wei, Wen-Qing ;
Liu, Bing-Qiang ;
Gan, Yi-Qiang ;
Ma, Hai-Jian ;
Cui, Da-Wei .
RARE METALS, 2021, 40 (02) :409-416
[48]   Impact of Composite Cathode Architecture Engineering on the Performance of All-Solid-State Sodium Batteries [J].
Kumari, Pratima ;
Kumar, Ajit ;
Lohani, Harshita ;
Ahuja, Aakash ;
Sengupta, Abhinanda ;
Mitra, Sagar .
ACS APPLIED MATERIALS & INTERFACES, 2025, 17 (21) :30793-30805
[49]   All-solid-state lithium-sulfur batteries assembled by composite polymer electrolyte and amorphous sulfur/rGO composite cathode [J].
Chen, Fei ;
Puente, P. M. Gonzalez ;
Zhang, Yiluo ;
Cao, Shiyu ;
Lu, Xinqi ;
Yi, Zhuoran ;
Shen, Qiang ;
Li, Jun .
SOLID STATE IONICS, 2022, 380
[50]   Research Progress on Interfaces of All-Solid-State Batteries [J].
Wang, Han ;
An, Hanwen ;
Shan, Hongmei ;
Zhao, Lei ;
Wang, Jiajun .
ACTA PHYSICO-CHIMICA SINICA, 2021, 37 (11)