A fully coupled electrochemical-mechanical-thermal model of all-solid-state thin-film Li-ion batteries
Publication type: Journal Article
Publication date: 2022-08-01
scimago Q1
wos Q1
SJR: 1.784
CiteScore: 14.9
Impact factor: 7.9
ISSN: 03787753, 18732755
Physical and Theoretical Chemistry
Electrical and Electronic Engineering
Energy Engineering and Power Technology
Renewable Energy, Sustainability and the Environment
Abstract
All-solid-state thin-film Li-ion batteries (ASSTFBs) have been regarded as a promising power source for microsystems. The main bottleneck of ASSTFBs is that its capacity degrades significantly with decreasing working temperatures, which has been ascribed to the huge mass-transfer overpotential across the solid-state electrolyte because of its low ion conductivity. In this work, a fully coupled electrochemical-mechanical-thermal model is established to investigate the behaviors of ASSTFBs with a typical LiCoO 2 /LiPON/Li ASSTFB configuration, especially at low temperatures. Numerical simulation is also performed based on this fully coupled model. The simulation results agree well with the experimental data in a wide temperature range (243 K–353 K) and current rate (30 μA cm −2 to 300 μA cm −2 ), verifying the effectiveness and accuracy of this fully coupled model. Moreover, based on this model, it is found that both mass-transfer overpotential across the electrolyte and charge-transfer overpotential at the cathode/electrolyte interface are the key factors determining the ASSTFB performance at room temperatures; for comparison, the charge-transfer overpotential at the cathode/electrolyte interface plays the dominant role at low temperatures. This work provides a deep insight into the ASSTFB behaviors as well as its performance optimization strategy, particularly at low temperatures. • A fully coupled electrochemical-mechanical-thermal battery model is established. • The simulation results based on this model agree well with the experimental ones. • Mass-transfer and charge-transfer overpotentials are critical at room temperature. • Charge-transfer overpotential absolutely dominates at low temperature.
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Metrics
33
Total citations:
33
Citations from 2025:
19
(57.58%)
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GOST
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Fan Y. et al. A fully coupled electrochemical-mechanical-thermal model of all-solid-state thin-film Li-ion batteries // Journal of Power Sources. 2022. Vol. 539. p. 231614.
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Fan Y., Xia Q., Gong Y., Wang M., Xia H., Huang X. A fully coupled electrochemical-mechanical-thermal model of all-solid-state thin-film Li-ion batteries // Journal of Power Sources. 2022. Vol. 539. p. 231614.
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TY - JOUR
DO - 10.1016/j.jpowsour.2022.231614
UR - https://doi.org/10.1016/j.jpowsour.2022.231614
TI - A fully coupled electrochemical-mechanical-thermal model of all-solid-state thin-film Li-ion batteries
T2 - Journal of Power Sources
AU - Fan, Yongsheng
AU - Xia, Qiuying
AU - Gong, Yuan
AU - Wang, Mingyang
AU - Xia, Hui
AU - Huang, Xiaodong
PY - 2022
DA - 2022/08/01
PB - Elsevier
SP - 231614
VL - 539
SN - 0378-7753
SN - 1873-2755
ER -
Cite this
BibTex (up to 50 authors)
Copy
@article{2022_Fan,
author = {Yongsheng Fan and Qiuying Xia and Yuan Gong and Mingyang Wang and Hui Xia and Xiaodong Huang},
title = {A fully coupled electrochemical-mechanical-thermal model of all-solid-state thin-film Li-ion batteries},
journal = {Journal of Power Sources},
year = {2022},
volume = {539},
publisher = {Elsevier},
month = {aug},
url = {https://doi.org/10.1016/j.jpowsour.2022.231614},
pages = {231614},
doi = {10.1016/j.jpowsour.2022.231614}
}
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