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October 10, 2025Nano-Micro Letters6 citationsOpen Access

Regularly Arranged Micropore Architecture Enables Efficient Lithium-Ion Transport in SiOx/Artificial Graphite Composite Electrode

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JLJaejin LimDKDongyoon KangCBCheol Bak

Key Points

  • Enhanced lithium-ion transport was achieved through a uniquely engineered micropore structure in the composite electrode.
  • A 20% improvement in rate capability at 5C-rate discharge conditions was observed due to the controlled micropore structure.
  • Utilization of a perforated current collector significantly improved adhesion strength, leading to reduced mechanical degradation.
  • Capacity retention was enhanced by 50% through the innovative approach of modifying the micropore architecture.

Abstract

Abstract To enhance the electrochemical performance of lithium-ion battery anodes with higher silicon content, it is essential to engineer their microstructure for better lithium-ion transport and mitigated volume change as well. Herein, we suggest an effective approach to control the micropore structure of silicon oxide (SiO x )/artificial graphite (AG) composite electrodes using a perforated current collector. The electrode features a unique pore structure, where alternating high-porosity domains and low-porosity domains markedly reduce overall electrode resistance, leading to a 20% improvement in rate capability at a 5C-rate discharge condition. Using microstructure-resolved modeling and simulations, we demonstrate that the patterned micropore structure enhances lithium-ion transport, mitigating the electrolyte concentration gradient of lithium-ion. Additionally, perforating current collector with a chemical etching process increases the number of hydrogen bonding sites and enlarges the interface with the SiO x /AG composite electrode, significantly improving adhesion strength. This, in turn, suppresses mechanical degradation and leads to a 50% higher capacity retention. Thus, regularly arranged micropore structure enabled by the perforated current collector successfully improves both rate capability and cycle life in SiO x /AG composite electrodes, providing valuable insights into electrode engineering.

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Cite This Study

Lim et al. (2025) studied this question.

synapsesocial.com/papers/68e861b07ef2f04ca37e4afchttps://doi.org/10.1007/s40820-025-01929-4
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