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Multilayer Polyethylene Separator with Enhanced Thermal and Electrochemical Performance for Lithium-Ion Batteries
by
Chen, Baohui
, Liu, Jiarui
, Wang, Jiangfeng
, Cai, Jin
, Wu, Chuanping
, Xie, Linjin
, Chen, Luojia
, Liu, Jingju
, Chen, Kuo
, Li, Zuosheng
, Gong, Xuanlin
in
Aluminum
/ Aluminum oxide
/ Asymmetric structures
/ Batteries
/ Coatings
/ Contact angle
/ Cost analysis
/ Dimensional stability
/ Electric properties
/ Electric vehicles
/ Electrochemical analysis
/ Electrochemistry
/ Electrolytes
/ Electrolytic cells
/ Energy storage
/ Ion currents
/ Lithium
/ Lithium-ion batteries
/ Microspheres
/ Multilayers
/ Polyethylene glycol
/ Polyethylenes
/ Polyolefins
/ Separators
/ Shutdowns
/ Stainless steel
/ Structural integrity
/ Substrates
/ Temperature
/ Tensile strength
/ Thermal runaway
/ Thermal stability
/ Wettability
2026
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Multilayer Polyethylene Separator with Enhanced Thermal and Electrochemical Performance for Lithium-Ion Batteries
by
Chen, Baohui
, Liu, Jiarui
, Wang, Jiangfeng
, Cai, Jin
, Wu, Chuanping
, Xie, Linjin
, Chen, Luojia
, Liu, Jingju
, Chen, Kuo
, Li, Zuosheng
, Gong, Xuanlin
in
Aluminum
/ Aluminum oxide
/ Asymmetric structures
/ Batteries
/ Coatings
/ Contact angle
/ Cost analysis
/ Dimensional stability
/ Electric properties
/ Electric vehicles
/ Electrochemical analysis
/ Electrochemistry
/ Electrolytes
/ Electrolytic cells
/ Energy storage
/ Ion currents
/ Lithium
/ Lithium-ion batteries
/ Microspheres
/ Multilayers
/ Polyethylene glycol
/ Polyethylenes
/ Polyolefins
/ Separators
/ Shutdowns
/ Stainless steel
/ Structural integrity
/ Substrates
/ Temperature
/ Tensile strength
/ Thermal runaway
/ Thermal stability
/ Wettability
2026
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Multilayer Polyethylene Separator with Enhanced Thermal and Electrochemical Performance for Lithium-Ion Batteries
by
Chen, Baohui
, Liu, Jiarui
, Wang, Jiangfeng
, Cai, Jin
, Wu, Chuanping
, Xie, Linjin
, Chen, Luojia
, Liu, Jingju
, Chen, Kuo
, Li, Zuosheng
, Gong, Xuanlin
in
Aluminum
/ Aluminum oxide
/ Asymmetric structures
/ Batteries
/ Coatings
/ Contact angle
/ Cost analysis
/ Dimensional stability
/ Electric properties
/ Electric vehicles
/ Electrochemical analysis
/ Electrochemistry
/ Electrolytes
/ Electrolytic cells
/ Energy storage
/ Ion currents
/ Lithium
/ Lithium-ion batteries
/ Microspheres
/ Multilayers
/ Polyethylene glycol
/ Polyethylenes
/ Polyolefins
/ Separators
/ Shutdowns
/ Stainless steel
/ Structural integrity
/ Substrates
/ Temperature
/ Tensile strength
/ Thermal runaway
/ Thermal stability
/ Wettability
2026
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Multilayer Polyethylene Separator with Enhanced Thermal and Electrochemical Performance for Lithium-Ion Batteries
Journal Article
Multilayer Polyethylene Separator with Enhanced Thermal and Electrochemical Performance for Lithium-Ion Batteries
2026
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Overview
The inherent limitations of conventional polyolefin separators, particularly their poor thermal stability and insufficient mechanical strength, pose significant safety risks for lithium-ion batteries (LIBs) by increasing susceptibility to thermal runaway. In this study, we developed a novel multilayer separator through sequential coating of a commercial polyethylene (PE) substrate with aluminum oxide (Al2O3), para-aramid (PA), and polyethylene wax microspheres (PEWMs) using a scalable micro-gravure process, denoted as SAPEAS, signifying a PE-based asymmetric structure separator with enhanced thermal shutdown and dimensional stability. The SAPEAS separator exhibits an early thermal shutdown capability at 105 °C, maintains structural integrity with negligible shrinkage at 180 °C, and demonstrates comprehensive performance enhancements, including enhanced mechanical strength (tensile strength: 212.3 MPa; puncture strength: 0.64 kgf), excellent electrolyte wettability (contact angle: 12.8°), a high Li+ transference number (0.71), superior ionic conductivity (0.462 mS cm−1), outperforming that of commercial PE separators. In practical LFP|Gr pouch cells with ampere-hour (Ah) level capacity, the SAPEAS separator enables exceptional cycling stability with 97.9% energy retention after 1000 cycles, while significantly improving overcharge tolerance compared to PE. This work provides an effective strategy for simultaneously improving the safety and electrochemical performance of LIBs.
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