Fully Integrated Design of a Stretchable Solid-State Lithium-Ion Full Battery

被引:119
|
作者
Chen, Xi [1 ]
Huang, Haijian [1 ]
Pan, Long [1 ]
Liu, Tian [1 ]
Niederberger, Markus [1 ]
机构
[1] Swiss Fed Inst Technol, Lab Multifunct Mat, Dept Mat, CH-8093 Zurich, Switzerland
关键词
composite current collectors; hydrogel electrolytes; solid-state; stretchable batteries; GEL POLYMER ELECTROLYTES; AQUEOUS-ELECTROLYTE; CARBON NANOTUBES; STRAIN SENSORS; PVDF-HFP; COPOLYMER; PERFORMANCE; HEXAFLUOROPROPYLENE; CONDUCTIVITY; ELECTRONICS;
D O I
10.1002/adma.201904648
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
A solid-state lithium-ion battery, in which all components (current collector, anode and cathode, electrolyte, and packaging) are stretchable, is introduced, giving rise to a battery design with mechanical properties that are compliant with flexible electronic devices and elastic wearable systems. By depositing Ag microflakes as a conductive layer on a stretchable carbon-polymer composite, a current collector with a low sheet resistance of approximate to 2.7 omega (-1) at 100% strain is obtained. Stretchable electrodes are fabricated by integrating active materials with the elastic current collector. A polyacrylamide-"water-in-salt" electrolyte is developed, offering high ionic conductivity of 10(-3) to 10(-2) S cm(-1) at room temperature and outstanding stretchability up to approximate to 300% of its original length. Finally, all these components are assembled into a solid-state lithium-ion full cell in thin-film configuration. Thanks to the deformable individual components, the full cell functions when stretched, bent, or even twisted. For example, after stretching the battery to 50%, a reversible capacity of 28 mAh g(-1) and an average energy density of 20 Wh kg(-1) can still be obtained after 50 cycles at 120 mA g(-1), confirming the functionality of the battery under extreme mechanical stress.
引用
收藏
页数:10
相关论文
共 50 条
  • [41] Solid-State Thermal Management for Lithium-Ion EV Batteries
    Alaoui, Chakib
    IEEE TRANSACTIONS ON VEHICULAR TECHNOLOGY, 2013, 62 (01) : 98 - 107
  • [42] Are solid-state batteries safer than lithium-ion batteries?
    Bates, Alex M.
    Preger, Yuliya
    Torres-Castro, Loraine
    Harrison, Katharine L.
    Harris, Stephen J.
    Hewson, John
    JOULE, 2022, 6 (04) : 742 - 755
  • [43] Solid-state electrolytes for beyond lithium-ion batteries: A review
    Aziam, Hasna
    Larhrib, Badre
    Hakim, Charifa
    Sabi, Noha
    Ben Youcef, Hicham
    Saadoune, Ismael
    RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2022, 167
  • [44] Miniaturization of Reference Electrodes for Solid-State Lithium-Ion Batteries
    Hertle, Jonas
    Walther, Felix
    Mogwitz, Boris
    Schroeder, Steffen
    Wu, Xiaohan
    Richter, Felix H.
    Janek, Juergen
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2023, 170 (04)
  • [45] Flexible Solid-State Lithium-Ion Batteries: Materials and Structures
    Deng, Ru
    He, Tian
    ENERGIES, 2023, 16 (12)
  • [46] Modeling lithium-ion solid-state electrolytes with a pinball model
    Kahle, Leonid
    Marcolongo, Aris
    Marzari, Nicola
    PHYSICAL REVIEW MATERIALS, 2018, 2 (06):
  • [47] A preliminary assessment of a solid-state lithium-ion battery in radiation environment by Geant4 simulations
    Lan, Rongze
    Wang, Hongrui
    Guo, Qingpeng
    Zhao, Jie
    Du, Xingju
    Sun, Jiaqi
    Dai, Jiayu
    Chen, Kaiguo
    JOURNAL OF APPLIED PHYSICS, 2024, 136 (21)
  • [48] Review on composite polymer electrolyte using PVDF-HFP for solid-state lithium-ion battery
    Halder, Bhargabi
    Mohamed, Mohamed Gamal
    Kuo, Shiao-Wei
    Elumalai, Perumal
    MATERIALS TODAY CHEMISTRY, 2024, 36
  • [49] Coordination-Driven Crosslinking Electrolytes for Fast Lithium-Ion Conduction and Solid-State Battery Applications
    Wang, Xiao-Xue
    Guan, De-Hui
    Ma, Xin-Yue
    Yuan, Xin-Yuan
    Zhu, Qing-Yao
    Deng, Hao-Tian
    Wang, Huan-Feng
    Xu, Ji-Jing
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2024,
  • [50] SOLID-STATE LITHIUM POLYACETYLENE BATTERY
    SCROSATI, B
    OWENS, BB
    SOLID STATE IONICS, 1987, 23 (04) : 275 - 278