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volume 10 issue 24

Design Strategies of Li–Si Alloy Anode for Mitigating Chemo‐Mechanical Degradation in Sulfide‐Based All‐Solid‐State Batteries

MINHYUNG KIM 1
Min Ju Kim 1
Yeong Seon Oh 1
Sung Kang 2
Tae-Ho Shin 3
Hyung-Tae Lim 1, 4
2
 
Analysis and Assessment Center Research Institute of Industrial and Science Technology Pohang Gyeongbuk 37673 Republic of Korea
3
 
Hydrogen Energy Materials Center Korea Institute of Ceramic Engineering and Technology Jinju 52851 Republic of Korea
Publication typeJournal Article
Publication date2023-06-26
scimago Q1
wos Q1
SJR3.775
CiteScore18.2
Impact factor14.1
ISSN21983844
Medicine (miscellaneous)
General Chemical Engineering
General Physics and Astronomy
General Materials Science
General Engineering
Biochemistry, Genetics and Molecular Biology (miscellaneous)
Abstract

Composite anodes of Li3PS4 glass+Li–Si alloy (Type 1) and Li3N+LiF+Li–Si alloy (Type 2) are prepared for all‐solid‐state batteries with Li3PS4 (LPS) glass electrolyte and sulfur/LPS glass/carbon composite cathode. Using a three‐electrode system, the anode and cathode potentials are separated, and their polarization resistances are individually traced. Even under high‐cutoff‐voltage conditions (3.7 V), Type 1 and 2 cells are stably cycled without voltage noise for >200 cycles. Although cathode polarization resistance drastically increases after 3.7 V charge owing to LPS oxidation, LPS redox behavior is fairly reversible upon discharge–charge unlike the non‐composite alloy anode cell. Time‐of‐flight secondary ion mass spectrometry analysis reveals that the enhanced cyclability is attributed to uniform Li–Si alloying throughout the composite anode, providing more pathways for lithium ions even when these ions are over‐supplied via LPS oxidation. These results imply that LPS‐based cells can be reversibly cycled with LPS redox even under high‐cutoff voltages, as long as non‐uniform alloying (lithium dendrite growth) is prevented. Type 1 and 2 cells exhibit similar performance and stability although reduction product is formed in Type 1. This work highlights the importance of alloy anode design to prevent chemo‐mechanical failure when cycling the cell outside the electrochemical stability window.

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GOST Copy
KIM M. et al. Design Strategies of Li–Si Alloy Anode for Mitigating Chemo‐Mechanical Degradation in Sulfide‐Based All‐Solid‐State Batteries // Advanced Science. 2023. Vol. 10. No. 24.
GOST all authors (up to 50) Copy
KIM M., Kim M. J., Oh Y. S., Kang S., Shin T., Lim H. Design Strategies of Li–Si Alloy Anode for Mitigating Chemo‐Mechanical Degradation in Sulfide‐Based All‐Solid‐State Batteries // Advanced Science. 2023. Vol. 10. No. 24.
RIS |
Cite this
RIS Copy
TY - JOUR
DO - 10.1002/advs.202301381
UR - https://doi.org/10.1002/advs.202301381
TI - Design Strategies of Li–Si Alloy Anode for Mitigating Chemo‐Mechanical Degradation in Sulfide‐Based All‐Solid‐State Batteries
T2 - Advanced Science
AU - KIM, MINHYUNG
AU - Kim, Min Ju
AU - Oh, Yeong Seon
AU - Kang, Sung
AU - Shin, Tae-Ho
AU - Lim, Hyung-Tae
PY - 2023
DA - 2023/06/26
PB - Wiley
IS - 24
VL - 10
PMID - 37357986
SN - 2198-3844
ER -
BibTex
Cite this
BibTex (up to 50 authors) Copy
@article{2023_KIM,
author = {MINHYUNG KIM and Min Ju Kim and Yeong Seon Oh and Sung Kang and Tae-Ho Shin and Hyung-Tae Lim},
title = {Design Strategies of Li–Si Alloy Anode for Mitigating Chemo‐Mechanical Degradation in Sulfide‐Based All‐Solid‐State Batteries},
journal = {Advanced Science},
year = {2023},
volume = {10},
publisher = {Wiley},
month = {jun},
url = {https://doi.org/10.1002/advs.202301381},
number = {24},
doi = {10.1002/advs.202301381}
}