Dual‐Conduction Polymer Electrolyte and Stable Interphase Engineering for Room‐/Subzero‐Temperature, Long‐Cycling All‐Solid‐State Sodium Batteries

H Hong Qiu (Guangdong Provincial Key Laboratory on Functional Soft Condensed Matter School of Materials and Energy Guangdong University of Technology Guangzhou 510006 China) Y Yang Yang C Congcong Liu Y Yu Yao (Key Laboratory for Advanced Materials and Joint International Research Laboratory of Precision Chemistry and Molecular Engineering, Feringa Nobel Prize Scientist Joint Research Center, Frontiers Science Center for Materiobiology and Dynamic Chemistry, Institute of Fine Chemicals, School of Chemistry and Molecular Engineering) Z Zhijun Wu S Shengnan He H Hongge Pan (Institute of Science and Technology for New Energy) X Xianhong Rui Y Yan Yu (Department of Respiratory Oncology Harbin Medical University Cancer Hospital Harbin China)

Abstract

Abstract All‐solid‐state sodium batteries (ASSSBs) are promising due to their exceptional energy density, safety, and abundant sodium resources. Poly(ethylene oxide) (PEO) electrolyte is extensively investigated for ASSSBs, but its practical application is limited by low ionic conductivity and interfacial instability at room/sub‑zero temperatures. Here, a dual‐strategy solid‐state electrolyte design (entirely liquid‐free) is presented in which succinonitrile serves as a plasticizer that synergizes with PEO, creating dual‐ion conduction pathways that achieve an impressive ionic conductivity of 2.75 × 10 −4 S cm −1 at room temperature. Concurrently, sodium difluoro(oxalate)borate undergoes in situ reactions with sodium metal anode, synergizing with the artificially formed NaF interphase layer to facilitate the successful formation of a stable, inorganic salt‐rich solid electrolyte interphase. This mechanism effectively suppresses undesirable side reactions between the polymer and sodium metal anode. Consequently, Na@NaF||Na@NaF symmetric cells exhibit outstanding cycling stability for over 1,500 hours at 0.1 mA cm −2 under room temperature. Full cells based on Na 3 V 2 (PO 4 ) 3 ||Na@NaF retain 91.2% of their initial capacity after 1,000 cycles at 2C. Notably, the ASSSBs deliver a discharge capacity of 88.2 mAh g −1 even at −5 °C, highlighting their suitability for low‐temperature applications. This work establishes an electrolyte‐interface collaborative design paradigm for high‐performance ASSSBs under wide‐temperature operating conditions.

Article Details

Volume / Issue Vol. 38, Issue 9
Published February 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (9)

H

Hong Qiu

Guangdong Provincial Key Laboratory on Functional Soft Condensed Matter School of Materials and Energy Guangdong University of Technology Guangzhou 510006 China

Y

Yang Yang

C

Congcong Liu

Y

Yu Yao

Key Laboratory for Advanced Materials and Joint International Research Laboratory of Precision Chemistry and Molecular Engineering, Feringa Nobel Prize Scientist Joint Research Center, Frontiers Science Center for Materiobiology and Dynamic Chemistry, Institute of Fine Chemicals, School of Chemistry and Molecular Engineering

Z

Zhijun Wu

S

Shengnan He

H

Hongge Pan

Institute of Science and Technology for New Energy

X

Xianhong Rui

Y

Yan Yu

Department of Respiratory Oncology Harbin Medical University Cancer Hospital Harbin China