Three-dimensional composite Li metal anode by simple mechanical modification for high-energy batteries
Received date: 24 Oct 2022
Accepted date: 22 Feb 2023
Published date: 15 Oct 2023
Copyright
Lithium (Li) metal is believed to be the “Holy Grail” among all anode materials for next-generation Li-based batteries due to its high theoretical specific capacity (3860 mAh/g) and lowest redox potential (−3.04 V). Disappointingly, uncontrolled dendrite formation and “hostless” deposition impede its further development. It is well accepted that the construction of three-dimensional (3D) composite Li metal anode could tackle the above problems to some extent by reducing local current density and maintaining electrode volume during cycling. However, most strategies to build 3D composite Li metal anode require either electrodeposition or melt-infusion process. In spite of their effectiveness, these procedures bring multiple complex processing steps, high temperature, and harsh experimental conditions which cannot meet the actual production demand in consideration of cost and safety. Under this condition, a novel method to construct 3D composite anode via simple mechanical modification has been recently proposed which does not involve harsh conditions, fussy procedures, or fancy equipment. In this mini review, a systematic and in-depth investigation of this mechanical deformation technique to build 3D composite Li metal anode is provided. First, by summarizing a number of recent studies, different mechanical modification approaches are classified clearly according to their specific procedures. Then, the effect of each individual mechanical modification approach and its working mechanisms is reviewed. Afterwards, the merits and limits of different approaches are compared. Finally, a general summary and perspective on construction strategies for next-generation 3D composite Li anode are presented.
Min HONG , Zhiyong WANG , Zhangqin SHI , Zheng LIANG . Three-dimensional composite Li metal anode by simple mechanical modification for high-energy batteries[J]. Frontiers in Energy, 2023 , 17(5) : 569 -584 . DOI: 10.1007/s11708-023-0875-7
1 |
Trahey L, Brushett F R, Balsara N P.
|
2 |
Boudet H S. Public perceptions of and responses to new energy technologies. Nature Energy, 2019, 4(6): 446–455
|
3 |
Wu Y, Wang W, Ming J.
|
4 |
He X, Bresser D, Passerini S.
|
5 |
Matsumoto K, Hwang J, Kaushik S.
|
6 |
Zhang Z, Chen H, Hu Z.
|
7 |
Xie J, Lu Y C. A retrospective on lithium-ion batteries. Nature Communications, 2020, 11(1): 2499
|
8 |
Wu F, Maier J, Yu Y. Guidelines and trends for next-generation rechargeable lithium and lithium-ion batteries. Chemical Society Reviews, 2020, 49(5): 1569–1614
|
9 |
Mennel J A, Chidambaram D. A review on the development of electrolytes for lithium-based batteries for low temperature applications. Frontiers in Energy, 2023, 17(1): 43–71
|
10 |
Duffner F, Kronemeyer N, Tübke J.
|
11 |
Choi J W, Aurbach D. Promise and reality of post-lithium-ion batteries with high energy densities. Nature Reviews. Materials, 2016, 1(4): 16013
|
12 |
Duan J, Tang X, Dai H.
|
13 |
Bian Z, Tang Z, Xie J.
|
14 |
Shen X, Liu H, Cheng X B.
|
15 |
Xing Z, Fu J, Chen S.
|
16 |
Xiao J, Li Q, Bi Y.
|
17 |
Shan J, Yang X, Yan C.
|
18 |
Xia S, Wu X, Zhang Z.
|
19 |
Wang Q, Liu B, Shen Y.
|
20 |
Qin K, Holguin K, Mohammadiroudbari M.
|
21 |
Li G. Regulating mass transport behavior for high-performance lithium metal batteries and fast-charging lithium-ion batteries. Advanced Energy Materials, 2021, 11(7): 2002891
|
22 |
Wang S, Huang F, Jiao S.
|
23 |
Wu M, Li Y, Liu X.
|
24 |
Fu C, Shen S, Wu R.
|
25 |
Tan L W, Sun Y, Wei C L.
|
26 |
Lin L D, Suo L M, Hu Y S.
|
27 |
Meyerson M L, Papa P E, Heller A.
|
28 |
Wang D D, Liu H D, Li M Q.
|
29 |
Wang H S, Yu Z A, Kong X.
|
30 |
Zhao F P, Alahakoon S H, Adair K.
|
31 |
Yue Y, Liang H. 3D current collectors for lithium-ion batteries: A topical review. Small Methods, 2018, 2(8): 1800056
|
32 |
Wang J, Wang M, Chen F.
|
33 |
Guo C, Guo Y, Tao R.
|
34 |
Chen J, Zhao J, Lei L.
|
35 |
Yun Q, He Y B, Lv W.
|
36 |
Yan Y, Shu C, Zheng R.
|
37 |
Nurpeissova A, Adi A, Aishova A.
|
38 |
Zhang J, Chen H, Wen M.
|
39 |
Chen Y, Elangovan A, Zeng D.
|
40 |
Kwon H, Lee J H, Roh Y.
|
41 |
Shi P, Zhang X Q, Shen X.
|
42 |
Liao Y, Yuan L, Xiang J.
|
43 |
Zhang R, Chen X, Shen X.
|
44 |
Yue X Y, Li X L, Wang W W.
|
45 |
Zhan Y X, Shi P, Ma X X.
|
46 |
Song H, Chen X, Zheng G.
|
47 |
Shi P, Zhang X Q, Shen X.
|
48 |
Pan D, Zhao C, Qi X.
|
49 |
Fan L, Zhuang H L, Zhang W.
|
50 |
Tang Y, Zhang L, Chen J.
|
51 |
Ryou M H, Lee Y M, Lee Y.
|
52 |
Becking J, Gröbmeyer A, Kolek M.
|
53 |
Park J, Jeong J, Lee Y.
|
54 |
Kim Y J, Jin H S, Lee D H.
|
55 |
Bae H S, Phiri I, Kang H S.
|
56 |
Xu R, Liu F, Ye Y.
|
57 |
Zhang D, Wang S, Li B.
|
58 |
Chen X, Shang M, Niu J. Inter-layer-calated thin Li metal electrode with improved battery capacity retention and dendrite suppression. Nano Letters, 2020, 20(4): 2639–2646
|
59 |
Li B, Zhang D, Liu Y.
|
60 |
Shu N, Xie J, Wang X.
|
61 |
Zhou Y, Zhang X, Ding Y.
|
62 |
Luo C, Hu H, Zhang T.
|
63 |
Liang Z, Yan K, Zhou G.
|
64 |
Chen Y Q, Yue M, Liu C L.
|
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