volume 14 issue 10 pages 5289-5314

Strategies towards enabling lithium metal in batteries: interphases and electrodes

Birger Horstmann 1, 2
Jiayan Shi 3
Rachid Amine 4
Martin Werres 1, 2
Xin He 5
Hao Jia 6
Florian Hausen 7
Isidora Cekic-Laskovic 8, 9
Simon Wiemers-Meyer 10, 11
Jeffrey Lopez 12
Diego E. Galvez-Aranda 13
Florian Baakes 14
Dominic Bresser 1, 15
Chi-Cheung Su 3
Yaobin Xu 16
吴旭 Wu Xu 6
Peter Jakes 7
Rüdiger-A. Eichel 7
Egbert Figgemeier 10, 11
Ulrike Krewer 14
Jorge M. Seminario 13
Chongmin Wang 16
Stefano Passerini 1, 15
Yang Shao-Horn 12, 17, 18
Martin Winter 8, 9, 10, 11
Khalil Amine 3, 19
Robert Kostecki 5
Publication typeJournal Article
Publication date2021-07-29
scimago Q1
wos Q1
SJR10.529
CiteScore44.0
Impact factor30.8
ISSN17545692, 17545706
Environmental Chemistry
Pollution
Nuclear Energy and Engineering
Renewable Energy, Sustainability and the Environment
Abstract
Despite the continuous increase in capacity, lithium-ion intercalation batteries are approaching their performance limits. As a result, research is intensifying on next-generation battery technologies. The use of a lithium metal anode promises the highest theoretical energy density and enables use of lithium-free or novel high-energy cathodes. However, the lithium metal anode suffers from poor morphological stability and Coulombic efficiency during cycling, especially in liquid electrolytes. In contrast to solid electrolytes, liquid electrolytes have the advantage of high ionic conductivity and good wetting of the anode, despite the lithium metal volume change during cycling. Rapid capacity fade due to inhomogeneous deposition and dissolution of lithium is the main hindrance to the successful utilization of the lithium metal anode in combination with liquid electrolytes. In this perspective, we discuss how experimental and theoretical insights can provide possible pathways for reversible cycling of two-dimensional lithium metal. Therefore, we discuss improvements in the understanding of lithium metal nucleation, deposition, and stripping on the nanoscale. As the solid–electrolyte interphase (SEI) plays a key role in the lithium morphology, we discuss how the proper SEI design might allow stable cycling. We highlight recent advances in conventional and (localized) highly concentrated electrolytes in view of their respective SEIs. We also discuss artificial interphases and three-dimensional host frameworks, which show prospects of mitigating morphological instabilities and suppressing large shape change on the electrode level.
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GOST Copy
Horstmann B. et al. Strategies towards enabling lithium metal in batteries: interphases and electrodes // Energy and Environmental Science. 2021. Vol. 14. No. 10. pp. 5289-5314.
GOST all authors (up to 50) Copy
Horstmann B., Shi J., Amine R., Werres M., He X., Jia H., Hausen F., Cekic-Laskovic I., Wiemers-Meyer S., Lopez J., Galvez-Aranda D. E., Baakes F., Bresser D., Su C., Xu Y., Wu Xu 吴., Jakes P., Eichel R., Figgemeier E., Krewer U., Seminario J. M., Balbuena P. B., Wang C., Passerini S., Shao-Horn Y., Winter M., Amine K., Kostecki R., Latz A. Strategies towards enabling lithium metal in batteries: interphases and electrodes // Energy and Environmental Science. 2021. Vol. 14. No. 10. pp. 5289-5314.
RIS |
Cite this
RIS Copy
TY - JOUR
DO - 10.1039/d1ee00767j
UR - https://xlink.rsc.org/?DOI=D1EE00767J
TI - Strategies towards enabling lithium metal in batteries: interphases and electrodes
T2 - Energy and Environmental Science
AU - Horstmann, Birger
AU - Shi, Jiayan
AU - Amine, Rachid
AU - Werres, Martin
AU - He, Xin
AU - Jia, Hao
AU - Hausen, Florian
AU - Cekic-Laskovic, Isidora
AU - Wiemers-Meyer, Simon
AU - Lopez, Jeffrey
AU - Galvez-Aranda, Diego E.
AU - Baakes, Florian
AU - Bresser, Dominic
AU - Su, Chi-Cheung
AU - Xu, Yaobin
AU - Wu Xu, 吴旭
AU - Jakes, Peter
AU - Eichel, Rüdiger-A.
AU - Figgemeier, Egbert
AU - Krewer, Ulrike
AU - Seminario, Jorge M.
AU - Balbuena, Perla B
AU - Wang, Chongmin
AU - Passerini, Stefano
AU - Shao-Horn, Yang
AU - Winter, Martin
AU - Amine, Khalil
AU - Kostecki, Robert
AU - Latz, Arnulf
PY - 2021
DA - 2021/07/29
PB - Royal Society of Chemistry (RSC)
SP - 5289-5314
IS - 10
VL - 14
SN - 1754-5692
SN - 1754-5706
ER -
BibTex |
Cite this
BibTex (up to 50 authors) Copy
@article{2021_Horstmann,
author = {Birger Horstmann and Jiayan Shi and Rachid Amine and Martin Werres and Xin He and Hao Jia and Florian Hausen and Isidora Cekic-Laskovic and Simon Wiemers-Meyer and Jeffrey Lopez and Diego E. Galvez-Aranda and Florian Baakes and Dominic Bresser and Chi-Cheung Su and Yaobin Xu and 吴旭 Wu Xu and Peter Jakes and Rüdiger-A. Eichel and Egbert Figgemeier and Ulrike Krewer and Jorge M. Seminario and Perla B Balbuena and Chongmin Wang and Stefano Passerini and Yang Shao-Horn and Martin Winter and Khalil Amine and Robert Kostecki and Arnulf Latz},
title = {Strategies towards enabling lithium metal in batteries: interphases and electrodes},
journal = {Energy and Environmental Science},
year = {2021},
volume = {14},
publisher = {Royal Society of Chemistry (RSC)},
month = {jul},
url = {https://xlink.rsc.org/?DOI=D1EE00767J},
number = {10},
pages = {5289--5314},
doi = {10.1039/d1ee00767j}
}
MLA
Cite this
MLA Copy
Horstmann, Birger, et al. “Strategies towards enabling lithium metal in batteries: interphases and electrodes.” Energy and Environmental Science, vol. 14, no. 10, Jul. 2021, pp. 5289-5314. https://xlink.rsc.org/?DOI=D1EE00767J.