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September 19, 2025Advanced Functional Materials14 citations

Gradient Heterogeneous Coatings for Silicon‐Carbon Anodes in Lithium‐Ion Batteries

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SJSiwei JiangJFJiahong FanYLY. Liu

Key Points

  • A novel gradient heterogeneous coating strategy addresses the conductivity-stability paradox in silicon-based anodes.
  • Experimental results show SiO x /PAA@C achieves a rate capability of 480 mAh g −1 at 6 A g −1, indicating its superiority.
  • The study demonstrates that coating sequence modulation significantly enhances cycling stability of silicon anodes.
  • This innovative approach may enable scalable production of advanced lithium-ion batteries with optimized performance.

Abstract

Abstract Silicon sub‐oxides (SiO x ) are promising high‐capacity anodes for advanced lithium‐ion batteries but suffer from rapid capacity fade, progressive voltage decay, and inferior rate capability. While monolithic coating strategies (e.g., rigid CVD carbon encapsulation or flexible poly(acrylic acid) (PAA) chemical coupling) partially mitigate volumetric expansion and interfacial instability, their effectiveness is fundamentally constrained by inherent conductivity‐mechanical buffering trade‐offs. This study systematically compares these systems, establishing that carbon layers govern electron transport while PAA matrices reinforce interfacial stabilization. Consequently, this study developes an innovative gradient heterogeneous coating strategy (SiO x @C/PAA and SiO x /PAA@C architectures) that resolves the conductivity‐stability paradox through precise coating sequence modulation. Experimental results demonstrate that outer‐layer physicochemical properties dictate overall performance: SiO x /PAA@C (carbon exterior) delivers superior rate capability (480 mAh g −1 at 6 A g −1 ; 120 mAh g −1 at 4.5 A g −1 in full cells), while SiO x @C/PAA (PAA exterior) achieves exceptional cycling stability (89.3% retention after 150 cycles; 81.17% after 650 cycles in full cells). Inner coatings enhance active material stability via microstructural modulation. This approach successfully addresses the tripartite challenges of capacity preservation, rate performance optimization, and industrial scalability, establishing a theoretical framework for hierarchical interface engineering in silicon‐based anodes alongside scalable fabrication protocols for practical implementation.

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Cite This Study

Jiang et al. (2025) studied this question.

synapsesocial.com/papers/68d466a831b076d99fa64fcdhttps://doi.org/10.1002/adfm.202519728
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Lithiated PAA‐Coated SiO <sub>x</sub> Anode for Stable and High‐Capacity Lithium‐Ion Batteries: Interfacial Regulation and Volume Expansion Suppression2026
  2. 2Promoting Li Transfer and Storage in Si Anode Through Dynamically Precise Modulation of Constructed Carbon Coating2025 · 7 citations
  3. 3A Gradient Composite Structure Enables a Stable Microsized Silicon Suboxide-Based Anode for a High-Performance Lithium-Ion Battery2024 · 9 citations
  4. 4A Dual‐Layer Carbon Encapsulation Strategy for Stable Silicon Anodes: Inner Volume Expansion Buffer and Outer Interface Stabilization2026
  5. 5Understanding Degradation Mechanisms in Spray-coated Alternating Silicon-Carbon Thin Films as Anodes for Lithium-Ion Batteries2025