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Direct Ink Writing of Moldable Electrochemical Energy Storage Devices: Ongoing Progress, Challenges, and Prospects
Author(s) -
Zhang Quanhai,
Zhou Jiangqi,
Chen Zhihong,
Xu Chao,
Tang Wei,
Yang Guangzhi,
Lai Chunyan,
Xu Qunjie,
Yang Junhe,
Peng Chengxin
Publication year - 2021
Publication title -
advanced engineering materials
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.938
H-Index - 114
eISSN - 1527-2648
pISSN - 1438-1656
DOI - 10.1002/adem.202100068
Subject(s) - energy storage , supercapacitor , materials science , flexibility (engineering) , nanotechnology , 3d printing , electrochemical energy storage , energy density , process engineering , power density , electrochemical energy conversion , engineering physics , electrochemistry , power (physics) , engineering , metallurgy , chemistry , physics , statistics , mathematics , electrode , quantum mechanics
Among the advanced additive manufacturing technologies, direct ink writing (DIW) technology is extensively utilized to fabricate various energy storage devices (i.e., batteries, supercapacitors [SCs], and solar cells) due to its excellent process flexibility, excellent geometric controllability, as well as relative low‐cost and efficient processes. DIW offers a convenient way to build 3D structures for energy storage devices and provide higher power density and energy density in comparison with traditional casting techniques. Herein, the recent advances in DIW for emerging energy storage devices, including SCs, lithium‐ion batteries, lithium–sulfur batteries, rechargeable lithium metal batteries, and solid‐state batteries, are emphasized and discussed. The significant achievements made developing printed energy storage devices, such as printing ink materials, designing the printing process, and the great progress in terms of the corresponding electrochemical performances, are also highlighted. Finally, the major challenges and potential research possibilities in 3D printing energy storage device are proposed. It can be expected that, as 3D printing technology develops, batteries and SCs with durable lifespans, favorable safety, as well as high energy density and power density will eventually be utilized in many fields.