Issue 8, 2025

Rational design for enhanced mechanical and kinetic properties of SnSb-based yolk–shell heterostructure as long cycle-life, high-rate Na-ion battery anode

Abstract

Bimetallic SnSb has significantly attracted attention as a Na-ion battery (SIB) anode owing to its higher theoretical capacity of 752 mA h g−1 compared to conventional hard carbon anodes. However, practical applications are hindered by substantial volume changes during sodiation/desodiation. Herein, a SnSb-based heterostructured anode (SnSb@C-SiOC) with high SnSb content (∼85%) is developed via two-step pyrolysis using SnSbOx@polydopamine precursors dispersed in silicone oil. The resulting SnSb yolk nanoparticles, encapsulated within a multi-functional C–SiOC bi-layered shell, facilitate rapid Na-ion transport and provide effective volume buffering during cycling for efficient electrochemical reactions and enhanced structural integrity. Post-mortem analyses reveal reversible crystalline phase transformations of SnSb with uniform elemental distributions, demonstrating the effectiveness of bi-layered shells. With superior mechanical robustness of the heterostructure confirmed by nanoindentation, the SnSb@C-SiOC anode delivers a high capacity of 445.6 mA h g−1 after 250 cycles at 2 A g−1, retaining 87.9% of its initial capacity and greatly outperforming pure SnSb. Additionally, a full cell combining the anode with a Na3V2(PO4)3 cathode shows promising cycle and rate performances, suggesting potential for practical applications. This study presents a viable approach for developing durable and efficient anode materials to advance SIBs and provide next-generation energy storage systems.

Graphical abstract: Rational design for enhanced mechanical and kinetic properties of SnSb-based yolk–shell heterostructure as long cycle-life, high-rate Na-ion battery anode

Supplementary files

Article information

Article type
Paper
Submitted
15 Nov 2024
Accepted
19 Jan 2025
First published
21 Jan 2025
This article is Open Access
Creative Commons BY-NC license

J. Mater. Chem. A, 2025,13, 5777-5788

Rational design for enhanced mechanical and kinetic properties of SnSb-based yolk–shell heterostructure as long cycle-life, high-rate Na-ion battery anode

J. M. Im, H. Lim, H. Kim, Y. C. Kang, Y. Hwa and S. Kim, J. Mater. Chem. A, 2025, 13, 5777 DOI: 10.1039/D4TA08119F

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