Extreme‐Fast‐Charging Li‐Ion Batteries via Activation‐Energy Regulation With a Li 3 PO 4 ‐Li 2 SO 4 ‐Rich Solid Electrolyte Interphase

ABSTRACT Extreme‐fast‐charging (XFC) batteries are essential for widespread electric vehicle adoption. Although heating‐assisted charging enables ultrafast charging at elevated temperatures (e.g., 65°C), it increases the risk of thermal runaway. Lowering the activation energy of interfacial Li‐ion transport could enable safer room‐temperature XFC, although effective approaches remain limited. Here, we demonstrate that an amorphous Li 3 PO 4 ‐Li 2 SO 4 ‐rich solid electrolyte interphase (SEI), formed through electrolyte design, regulates interfacial Li‐ion transport by simultaneously tailoring SEI chemistry and facilitating Li + desolvation, with the apparent activation energy reduced from 39.1 to 21.3 kJ mol −1 . As a result, 51.6 Ah pouch cells acquire 208.7 Wh kg −1 of energy within only 10.5 min at room temperature (25°C), representing state‐of‐the‐art fast‐charging performance. Furthermore, a 94 kWh battery pack (3P168S) assembled from 504 mass‐produced pouch cells was integrated into a commercial electric vehicle. The pack was charged from 5% to 85% state‐of‐charge in 11.77 min, delivering 36.0 km of driving distance per minute of charge, surpassing the XFC target for electric vehicles (32.2 km min −1 ). This work establishes an activation‐energy regulation strategy through coordinated control of interfacial solvation and SEI chemistry, providing a practical pathway toward room‐temperature XFC batteries and design principles for next‐generation fast‐charging technologies.

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Journal
Advanced Materials
Published
2026-09-22
DOI
https://doi.org/10.1002/adma.75045
Primary Topic
Advanced Battery Materials and Technologies
Type
article
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article

Extreme‐Fast‐Charging Li‐Ion Batteries via Activation‐Energy Regulation With a Li 3 PO 4 ‐Li 2 SO 4 ‐Rich Solid Electrolyte Interphase

Xiangdong Huang, Guo Ai, Xian Jun Loh, Huarong Xia et al.
Advanced Materials
Advanced Battery Materials and Technologies
article

Extreme‐Fast‐Charging Li‐Ion Batteries via Activation‐Energy Regulation With a Li 3 PO 4 ‐Li 2 SO 4 ‐Rich Solid Electrolyte Interphase

Xiangdong Huang, Guo Ai, Xian Jun Loh, Huarong Xia, Wenfeng Mao, Xiaodong Chen, Feng Pei, Liya Cai, Xiangbo Tang, Zhipeng Hu
article en

Abstract

ABSTRACT Extreme‐fast‐charging (XFC) batteries are essential for widespread electric vehicle adoption. Although heating‐assisted charging enables ultrafast charging at elevated temperatures (e.g., 65°C), it increases the risk of thermal runaway. Lowering the activation energy of interfacial Li‐ion transport could enable safer room‐temperature XFC, although effective approaches remain limited. Here, we demonstrate that an amorphous Li 3 PO 4 ‐Li 2 SO 4 ‐rich solid electrolyte interphase (SEI), formed through electrolyte design, regulates interfacial Li‐ion transport by simultaneously tailoring SEI chemistry and facilitating Li + desolvation, with the apparent activation energy reduced from 39.1 to 21.3 kJ mol −1 . As a result, 51.6 Ah pouch cells acquire 208.7 Wh kg −1 of energy within only 10.5 min at room temperature (25°C), representing state‐of‐the‐art fast‐charging performance. Furthermore, a 94 kWh battery pack (3P168S) assembled from 504 mass‐produced pouch cells was integrated into a commercial electric vehicle. The pack was charged from 5% to 85% state‐of‐charge in 11.77 min, delivering 36.0 km of driving distance per minute of charge, surpassing the XFC target for electric vehicles (32.2 km min −1 ). This work establishes an activation‐energy regulation strategy through coordinated control of interfacial solvation and SEI chemistry, providing a practical pathway toward room‐temperature XFC batteries and design principles for next‐generation fast‐charging technologies.

Advanced Materials
Agency for Science, Technology and Research (SG), Tianjin Normal University (CN), Nanyang Technological University (SG), Institute of Materials Research and Engineering (SG), Guangzhou Electronic Technology (China) (CN), GCI Science & Technology (China) (CN), Fuzhou University (CN), South China University of Technology (CN)
Affordable and clean energy
Openalex Percentile: Top 20%
Advanced Battery Materials and Technologies
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