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February 26, 2026Batteries3 citationsOpen Access

A Comprehensive Review on the Rapid Development of Silicon/MXene Nanocomposites for Lithium-Ion Battery Applications

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NKNarasimharao KitchamsettiNortheast Normal UniversitySMSungwook MhinDongguk UniversityHHHan HyuksuKonkuk University

Key Points

  • This review aims to summarize developments in silicon/mxene nanocomposites and their applications in lithium-ion batteries.
  • Review of recent literature on silicon/mxene nanocomposites
  • Analysis of fabrication strategies and structural designs
  • Evaluation of electrochemical performance of various configurations
  • Silicon/mxene nanocomposites show improved lithium storage performance
  • Integration enhances charge transport and electron/ion diffusion
  • Relationship between structural design and electrochemical behavior established

Abstract

Silicon (Si) has attracted extensive attention as a promising anode material for next-generation lithium-ion batteries (LIBs) due to its ultra-high theoretical capacity, low lithiation potential, and economic advantages. However, drastic volume expansion during cycling and slow reaction kinetics severely compromise its structural stability and practical application. Recently, two-dimensional (2D) MXenes have been explored as effective functional components in Si-based electrodes because of their excellent electrical conductivity, high specific surface area, adjustable surface terminations, and mechanical robustness. When integrated with Si, MXenes serve as conductive matrices that alleviate volumetric stress, enhance charge transport, and accelerate electron/ion diffusion. Consequently, Si/MXene nanocomposites (NCs) exhibit significantly improved lithium (Li) storage performance. This review outlines recent advances in Si/MXene NCs, covering fabrication strategies, structural engineering, and various configurations, including particulate materials, three-dimensional (3D) architectures, films, and fibrous systems, and establishes the relationship between structural design and electrochemical behavior. Remaining challenges and prospective research directions are also discussed to guide the development of high-energy-density LIB anodes.

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Cite This Study

Kitchamsetti et al. (2026) studied this question.

synapsesocial.com/papers/699fe36b95ddcd3a253e74c8https://doi.org/10.3390/batteries12030079
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Also Consider

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

  1. 1Hierarchical MXene–Carbon Nanotube Architectures for High‐Stability Silicon Oxide Anodes2025
  2. 2MXene-based hybrid composites for lithium-ion batteries: advances in synthesis strategies and electrochemical performance2025 · 36 citations
  3. 3The Synergistic Effect of Cross-Linked and Electrostatic Self-Assembly Si/MXene Composites Anode for Highly Efficient Lithium-Ion Battery2024 · 4 citations
  4. 4Advancing High‐Performance Si Anodes for Next‐Generation Li‐Ion Batteries: Strategies for Structural Stability, Interfacial Compatibility, and Transport Kinetics2026 · 3 citations
  5. 5Carbon and MXene Dual Confinement and Dense Structural Engineering Toward Construct High Performance Micron‐SiO x Anode for Li‐Ion Batteries2024 · 39 citations