Bicontinuous Structure Mediated Microstructural Engineering of Hard Carbon for Enhanced Sodium Storage

C Chen Tang W Wenwei Zhang (State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, School of Materials Science and Engineering) Y Yixiao Zhang Q Qinyou An (State Key Laboratory of Advanced Technology for Materials Synthesis and Processing) F Fugui Xu (State Key Laboratory of Synergistic Chem-Bio Synthesis, School of Chemistry and Chemical Engineering, Frontiers Science Center for Transformative Molecules, Shanghai Key Laboratory of Electrical Insulation and Thermal Ageing, Shanghai Jiao Tong University, 800 Dongchuan Road, Shanghai 200240, China) G Guoxiu Wang (Center for Clean Energy Technology, School of Mathematical and Physical Sciences, Faculty of Science) Y Yiyong Mai (State Key Laboratory of Synergistic Chem-Bio Synthesis, School of Chemistry and Chemical Engineering, Frontiers Science Center for Transformative Molecules, Shanghai Key Laboratory of Electrical Insulation and Thermal Ageing, Shanghai Jiao Tong University, 800 Dongchuan Road, Shanghai 200240, China)

Abstract

Abstract Sodium‐ion batteries (SIBs) are a promising energy storage technology due to the abundance and low cost of sodium resources. However, their practical application is hindered by challenges, including high irreversible capacity loss during initial cycles, poor rate performance, and structural instability. Here, a bicontinuous mesoporous hard carbon with a single primitive (SP) microstructure (coined SP–HC) is introduced that addresses these limitations through microstructural engineering. This SP–HC design increases the density and accessibility of Na + storage sites, enhances carbon disorder, and expands interlayer spacing, leading to improved sodium storage capacity and kinetics. The 3D continuous meso‐channels enable rapid Na + transport, achieving an exceptional rate performance of 172 mAh g −1 at 10 A g −1 (full charge in 1 min). Remarkably, the SP–HC anode exhibits unprecedented cycle stability, retaining a high capacity of 80 mAh g −1 even after 100 000 cycles at a high current density of 10 A g −1 , which represents the best cycle stability reported for hard carbon‐based anodes of SIBs. This study provides an insight into the critical role of microstructural engineering in optimizing electrochemical storage of hard carbon anodes for SIBs.

Article Details

Volume / Issue Vol. 38, Issue 5
Published January 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (7)

C

Chen Tang

W

Wenwei Zhang

State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, School of Materials Science and Engineering

Y

Yixiao Zhang

Q

Qinyou An

State Key Laboratory of Advanced Technology for Materials Synthesis and Processing

F

Fugui Xu

State Key Laboratory of Synergistic Chem-Bio Synthesis, School of Chemistry and Chemical Engineering, Frontiers Science Center for Transformative Molecules, Shanghai Key Laboratory of Electrical Insulation and Thermal Ageing, Shanghai Jiao Tong University, 800 Dongchuan Road, Shanghai 200240, China

G

Guoxiu Wang

Center for Clean Energy Technology, School of Mathematical and Physical Sciences, Faculty of Science

Y

Yiyong Mai

State Key Laboratory of Synergistic Chem-Bio Synthesis, School of Chemistry and Chemical Engineering, Frontiers Science Center for Transformative Molecules, Shanghai Key Laboratory of Electrical Insulation and Thermal Ageing, Shanghai Jiao Tong University, 800 Dongchuan Road, Shanghai 200240, China