High-pressure shear-induced construction of a SiOₓ-enriched Si/C Interface for high-performance silicon-based anodes in lithium-ion batteries

To tackle the primary issues of silicon-based anodes, including volumetric expansion, inadequate conductivity, and limited interfacial stability, we utilized high-pressure shear technology to prepare a silicon/hard carbon (Si/HC for short) composite anode, using corn cob-derived biomass hard carbon as the framework and combining it with commercial silicon powder. In the high-pressure shearing process, silicon grains are refined to the nanoscale, resulting in the emergence of a local metastable BC8-Si phase. Simultaneously, shear stress promotes the reconstruction of the silicon surface oxide layer, leading to the formation of a SiO x -enriched region at the silicon‑carbon interface. This configuration establishes a continuous conducting network and mitigates the stress resulting from volumetric expansion. Electrochemical evaluations indicate that the synthesized Si/HC composite electrode attains an initial reversible capacity of 1670 mAh g −1 at a current density of 0.2 A g −1 , and maintains 610 mAh g −1 after 500 cycles. At a 1C rate, it provides a capacity of 547 mAh g −1 , along with favorable rate recovery capabilities. The mechanical analysis and in situ characterization suggest that the cold-welding composite structure contributes to reduced interfacial polarization, promotes the development of a stable solid-electrolyte interphase (SEI) film, and shifts the lithium storage mechanism from diffusion-limited kinetics toward enhanced interfacial reaction contributions. This study presents a potential production method for the application of silicon-based anodes through a synergistic enhancement strategy involving physical compounding and interfacial modification.

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Publication Details

Journal
Journal of Energy Storage
Published
2026-09-16
DOI
https://doi.org/10.1016/j.est.2026.124727
Primary Topic
Advancements in Battery Materials
Type
article
Field-Weighted Citation Impact
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article

High-pressure shear-induced construction of a SiOₓ-enriched Si/C Interface for high-performance silicon-based anodes in lithium-ion batteries

Jingshu Wang, Xiaoxin Wu, Dongxue Yu, Juncheng Lv et al.
Journal of Energy Storage
Advancements in Battery Materials
article

High-pressure shear-induced construction of a SiOₓ-enriched Si/C Interface for high-performance silicon-based anodes in lithium-ion batteries

Jingshu Wang, Xiaoxin Wu, Dongxue Yu, Juncheng Lv, Zhao Wang, Tong Wu, Wen Zhang, Mingdi Fu, Junkai Zhang, Ming Lu
article en

Abstract

To tackle the primary issues of silicon-based anodes, including volumetric expansion, inadequate conductivity, and limited interfacial stability, we utilized high-pressure shear technology to prepare a silicon/hard carbon (Si/HC for short) composite anode, using corn cob-derived biomass hard carbon as the framework and combining it with commercial silicon powder. In the high-pressure shearing process, silicon grains are refined to the nanoscale, resulting in the emergence of a local metastable BC8-Si phase. Simultaneously, shear stress promotes the reconstruction of the silicon surface oxide layer, leading to the formation of a SiO x -enriched region at the silicon‑carbon interface. This configuration establishes a continuous conducting network and mitigates the stress resulting from volumetric expansion. Electrochemical evaluations indicate that the synthesized Si/HC composite electrode attains an initial reversible capacity of 1670 mAh g −1 at a current density of 0.2 A g −1 , and maintains 610 mAh g −1 after 500 cycles. At a 1C rate, it provides a capacity of 547 mAh g −1 , along with favorable rate recovery capabilities. The mechanical analysis and in situ characterization suggest that the cold-welding composite structure contributes to reduced interfacial polarization, promotes the development of a stable solid-electrolyte interphase (SEI) film, and shifts the lithium storage mechanism from diffusion-limited kinetics toward enhanced interfacial reaction contributions. This study presents a potential production method for the application of silicon-based anodes through a synergistic enhancement strategy involving physical compounding and interfacial modification.

Journal of Energy StorageVol. 182
Jilin Normal University (CN), Jilin Province Science and Technology Department (CN)
National Natural Science Foundation of China
Openalex Percentile: Top 21%
Advancements in Battery Materials
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