Recent progresses of 3D printing technologies for structural energy storage devices

被引:65
作者
Zeng, L. [1 ]
Li, P. [2 ]
Yao, Y. [3 ]
Niu, B. [1 ]
Niu, S. [1 ]
Xu, B. [1 ]
机构
[1] Southern Univ Sci & Technol, Dept Mat Sci & Engn, Shenzhen 518055, Guangdong, Peoples R China
[2] Hefei Univ Technol, Sch Mat Sci & Engn, Hefei 230009, Anhui, Peoples R China
[3] Univ Sci & Technol China, Dept Mat Sci & Engn, CAS Key Lab Mat Energy Convers, Hefei 230026, Anhui, Peoples R China
关键词
Special application scenarios; Complex structure; Structural devices; Lithium-ion batteries; Development directions; LITHIUM-ION BATTERIES; NANOSTRUCTURED MATERIALS; ELECTRODE MATERIALS; HYBRID ELECTRODES; CARBON; SUPERCAPACITORS; CONVERSION; PERFORMANCE; INK; SPECTROMETRY;
D O I
10.1016/j.mtnano.2020.100094
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Although existing energy storage devices (ESDs) that are prepared by traditional technologies can meet the demands of many application scenarios in our life, there are still many special application scenarios that cannot be implemented, such as flexible devices, wearable devices, and structural devices. Three-dimensional (3D) printing, an advanced technology that can realize rapid production of structural objects, has been widely studied in tissue microfluidics, electronics, and engineering. The exploration of its application in ESDs has also been started by scientists in recent years. This article focuses on the topic of 3D-printed structural ESDs with improved electrochemical performances. First, the background of 3D printing technologies in fabricating ESDs is introduced, including the advantages and categories of 3D printing technologies for ESDs. Then, the current progresses of 3D printing technologies in fabricating structural lithium-ion batteries (LIBs) and sodium-ion batteries are summarized, including the preparation of inks, the 3D-printed cathode/anode, the 3D-printed electrolyte, and the 3D-printed full LIBs. Besides, the progresses of other structural ESDs that are based on 3D printing are briefly summarized, such as the 3D-printed super-capacitors, the 3D-printed lithium-sulfur (Li-S) batteries, and the 3D-printed lithium-oxygen (Li-O-2) batteries. In the end of the review, we also point out the future development directions of 3D printing technologies for structural ESDs. We believe that 3D printing technologies are a promising production method in preparing structural ESDs for special usage scenarios. (C) 2020 Elsevier Ltd. All rights reserved.
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页数:13
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共 145 条
  • [91] Flexible energy storage devices based on nanocomposite paper
    Pushparaj, Victor L.
    Shaijumon, M. Manikoth
    Kumar, Ashavani
    Murugesan, Saravanababu
    Ci, Lijie
    Vajtai, Robert
    Linhardt, Robert J.
    Nalamasu, Omkaram
    Ajayan, Pulickel M.
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2007, 104 (34) : 13574 - 13577
  • [92] 3D-Printed, Superelastic Polypyrrole-Graphene Electrodes with Ultrahigh Areal Capacitance for Electrochemical Energy Storage
    Qi, Zhen
    Ye, Jianchao
    Chen, Wen
    Biener, Juergen
    Duoss, Eric B.
    Spadaccini, Christopher M.
    Worsley, Marcus A.
    Zhu, Cheng
    [J]. ADVANCED MATERIALS TECHNOLOGIES, 2018, 3 (07):
  • [93] 3D printing based on imaging data: review of medical applications
    Rengier, F.
    Mehndiratta, A.
    von Tengg-Kobligk, H.
    Zechmann, C. M.
    Unterhinninghofen, R.
    Kauczor, H. -U.
    Giesel, F. L.
    [J]. INTERNATIONAL JOURNAL OF COMPUTER ASSISTED RADIOLOGY AND SURGERY, 2010, 5 (04) : 335 - 341
  • [94] Porous carbon spheres and monoliths: morphology control, pore size tuning and their applications as Li-ion battery anode materials
    Roberts, Aled D.
    Li, Xu
    Zhang, Haifei
    [J]. CHEMICAL SOCIETY REVIEWS, 2014, 43 (13) : 4341 - 4356
  • [95] Facile 3D Metal Electrode Fabrication for Energy Applications via Inkjet Printing and Shape Memory Polymer
    Roberts, R. C.
    Wu, J.
    Hau, N. Y.
    Chang, Y. H.
    Feng, S. P.
    Li, D. C.
    [J]. 14TH INTERNATIONAL CONFERENCE ON MICRO AND NANOTECHNOLOGY FOR POWER GENERATION AND ENERGY CONVERSION APPLICATIONS (POWERMEMS 2014), 2014, 557
  • [96] Multimaterial 3D Printing of Graphene-Based Electrodes for Electrochemical Energy Storage Using Thermoresponsive Inks
    Rocha, Victoria G.
    Garcia-Tunon, Esther
    Botas, Cristina
    Markoulidis, Foivos
    Feilden, Ezra
    D'Elia, Eleonora
    Ni, Na
    Shaffer, Milo
    Saiz, Eduardo
    [J]. ACS APPLIED MATERIALS & INTERFACES, 2017, 9 (42) : 37136 - 37145
  • [97] Electrically functional 3D-architectured graphene/SiC composites
    Roman-Manso, Benito
    Figueiredo, Filipe M.
    Achiaga, Beatriz
    Barea, Rafael
    Perez-Coll, Domingo
    Morelos-Gomez, Aaron
    Terrones, Mauricio
    Isabel Osendi, Maria
    Belmonte, Manuel
    Miranzo, Pilar
    [J]. CARBON, 2016, 100 : 318 - 328
  • [98] Nanostructured metal sulfides for energy storage
    Rui, Xianhong
    Tan, Huiteng
    Yan, Qingyu
    [J]. NANOSCALE, 2014, 6 (17) : 9889 - 9924
  • [99] Ruiz-Morales JC, 2017, ENERG ENVIRON SCI, V10, P846, DOI 10.1039/c6ee03526d
  • [100] 3D printed hierarchically-porous microlattice electrode materials for exceptionally high specific capacity and areal capacity lithium ion batteries
    Saleh, Mohammad Sadeq
    Li, Jie
    Park, Jonghyun
    Panat, Rahul
    [J]. ADDITIVE MANUFACTURING, 2018, 23 : 70 - 78