Engineering ion migration and interface chemistry via covalent organic framework-enhanced polymer electrolytes for fast-charging sodium solid-state batteries

Y Yongbiao Mu (Shenzhen Key Laboratory of Advanced Energy Storage, Department of Mechanical and Energy Engineering) C Chen Li (Sibley School of Mechanical and Aerospace Engineering, Cornell University, Ithaca, NY, USA.) J Jun Huang X Xiaoqian Xu Y Yichun Wang Q Quanyan Man Z Zhiyu Zou M Meisheng Han Q Qing Zhang G Guobin Zhang L Lei Wei (School of Physical Science and Technology, Shanghai Key Laboratory of High-Resolution Electron Microscopy, State Key Laboratory of Advanced Medical Materials and Devices) B Baohua Li (Tsinghua Shenzhen International Graduate School) L Lin Zeng (Shenzhen Key Laboratory of Advanced Energy Storage, Department of Mechanical and Energy Engineering)

Abstract

Abstract Solid-state sodium batteries offer a promising route toward safe and cost-effective energy storage, yet their practical implementation remains limited by the difficulty of coupling fast ion transport with stable electrode–electrolyte interfaces, especially under fast-charging and long-cycling conditions. Here we report a covalent organic framework/poly(sodium acrylate-co-fluorinated ethylene) (COF/PNSE) composite electrolyte developed through synergistic structural and chemical regulation. The aligned nanoporous COF provides continuous Na⁺ transport pathways while mechanically reinforcing the PNSE matrix, delivering an ionic conductivity of 1.2 mS cm −1 at 30 °C. This integrated electrolyte enables robust Na metal compatibility, as demonstrated by symmetric Na cells operating for 6,750 h with low polarization of 85 mV and a critical current density of 1.9 mA cm −2 . Na | |Na 2/3 Ni 1/3 Mn 2/3 O 2 batteries deliver 82.5 mAh g −1 at 1 A g −1 and retain 77.2% capacity after 1,000 cycles at 100 mA g −1 , while maintaining 92.7% retention at 4.2 V over 180 cycles and 83.5% retention at 1 A g −1 over 2,000 cycles. Ah-level pouch cells further retain 87.3% capacity after 488 cycles at 1 A. Mechanistic analyses reveal that the COF framework guides uniform Na deposition and promotes dual-gradient NaF/Na 2 O-rich interphases, suppressing dendrite growth and stabilizing both electrodes. These findings inform future composite electrolyte design for solid-state sodium batteries.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 20, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (13)

Y

Yongbiao Mu

Shenzhen Key Laboratory of Advanced Energy Storage, Department of Mechanical and Energy Engineering

C

Chen Li

Sibley School of Mechanical and Aerospace Engineering, Cornell University, Ithaca, NY, USA.

J

Jun Huang

X

Xiaoqian Xu

Y

Yichun Wang

Q

Quanyan Man

Z

Zhiyu Zou

M

Meisheng Han

Q

Qing Zhang

G

Guobin Zhang

L

Lei Wei

School of Physical Science and Technology, Shanghai Key Laboratory of High-Resolution Electron Microscopy, State Key Laboratory of Advanced Medical Materials and Devices

B

Baohua Li

Tsinghua Shenzhen International Graduate School

L

Lin Zeng

Shenzhen Key Laboratory of Advanced Energy Storage, Department of Mechanical and Energy Engineering