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Sieving pore design enables stable and fast alloying chemistry of silicon negative electrodes in Li-ion batteries
by
Kong, Debin
, Deng, Youzhi
, Li, Qi
, He, Jiaxing
, Li, Jinghong
, Wei, Wei
, Zhang, Yibo
, Wu, Shichao
, Xu, Tianze
, Zhao, Ziyun
, Qi, Jiangshan
, Yang, Quan-Hong
, Han, Junwei
, Xiao, Jing
, Zhang, Jun
in
140/131
/ 140/133
/ 140/146
/ 147/135
/ 147/137
/ 639/301/299/891
/ 639/4077/4079/891
/ 639/638/161/891
/ Alloying
/ Batteries
/ Charge transfer
/ Charging
/ Deformation
/ Design
/ Electrode materials
/ Electrodes
/ Humanities and Social Sciences
/ Industrial applications
/ Life span
/ Lithium
/ Lithium-ion batteries
/ multidisciplinary
/ Science
/ Science (multidisciplinary)
/ Silicon
/ Solid electrolytes
/ Specific capacity
2025
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Sieving pore design enables stable and fast alloying chemistry of silicon negative electrodes in Li-ion batteries
by
Kong, Debin
, Deng, Youzhi
, Li, Qi
, He, Jiaxing
, Li, Jinghong
, Wei, Wei
, Zhang, Yibo
, Wu, Shichao
, Xu, Tianze
, Zhao, Ziyun
, Qi, Jiangshan
, Yang, Quan-Hong
, Han, Junwei
, Xiao, Jing
, Zhang, Jun
in
140/131
/ 140/133
/ 140/146
/ 147/135
/ 147/137
/ 639/301/299/891
/ 639/4077/4079/891
/ 639/638/161/891
/ Alloying
/ Batteries
/ Charge transfer
/ Charging
/ Deformation
/ Design
/ Electrode materials
/ Electrodes
/ Humanities and Social Sciences
/ Industrial applications
/ Life span
/ Lithium
/ Lithium-ion batteries
/ multidisciplinary
/ Science
/ Science (multidisciplinary)
/ Silicon
/ Solid electrolytes
/ Specific capacity
2025
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Sieving pore design enables stable and fast alloying chemistry of silicon negative electrodes in Li-ion batteries
by
Kong, Debin
, Deng, Youzhi
, Li, Qi
, He, Jiaxing
, Li, Jinghong
, Wei, Wei
, Zhang, Yibo
, Wu, Shichao
, Xu, Tianze
, Zhao, Ziyun
, Qi, Jiangshan
, Yang, Quan-Hong
, Han, Junwei
, Xiao, Jing
, Zhang, Jun
in
140/131
/ 140/133
/ 140/146
/ 147/135
/ 147/137
/ 639/301/299/891
/ 639/4077/4079/891
/ 639/638/161/891
/ Alloying
/ Batteries
/ Charge transfer
/ Charging
/ Deformation
/ Design
/ Electrode materials
/ Electrodes
/ Humanities and Social Sciences
/ Industrial applications
/ Life span
/ Lithium
/ Lithium-ion batteries
/ multidisciplinary
/ Science
/ Science (multidisciplinary)
/ Silicon
/ Solid electrolytes
/ Specific capacity
2025
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Sieving pore design enables stable and fast alloying chemistry of silicon negative electrodes in Li-ion batteries
Journal Article
Sieving pore design enables stable and fast alloying chemistry of silicon negative electrodes in Li-ion batteries
2025
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Overview
Ideal silicon negative electrodes for high-energy lithium-ion batteries are expected to feature high capacity, minimal expansion, long lifespan, and fast charging. Yet, engineered silicon materials face a fundamental paradox associated with particle deformation and charge transfer, which hinders the industrial use of advanced silicon electrode materials. Here we show a sieving-pore design for carbon supports that overcomes these mechano-kinetic limitations to enable stable, fast (de)alloying chemistries of silicon negative electrodes. Such a sieving-pore structure features an inner nanopore body with reserved voids to accommodate high-mass-content silicon deformation and an outer sub-nanopore entrance to induce both pre-desolvation and fast intrapore transport of ions during cycling. Importantly, the sieving effect yields inorganic-rich solid electrolyte interphases to mechanically confine the in-pore silicon, producing a stress-voltage coupling effect that mitigates the formation of detrimental crystalline Li
15
Si
4
. As a result, this design enables low electrode expansion (58% at the specific capacity of 1773 mAh g
−
1
and areal capacity of 4 mAh cm
−
2
), high initial/cyclic Coulombic efficiency (93.6%/99.9%), and minimal capacity decay (0.015% per cycle). A practical pouch cell with such a sieving-pore silicon negative electrode delivers 80% capacity retention over 1700 cycles at 2 A as well as a 10-min fast charging capability.
Silicon electrodes promise high energy for lithium-ion batteries but face swelling and durability issues. Here, the authors develop a sieving-pore design that enables stable, fast-charging silicon electrodes with long cycle life, low expansion, and industrial-scale potential.
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