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February 17, 2026Advanced Materials5 citations

Defect‐Elimination Strategies for Fabricating High‐Strength and Highly Conductive MXene Fibers

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CLCheng LiangUniversity of Science and Technology of ChinaFTFeiyu TaiUniversity of Science and Technology of ChinaZWZishuo WangUniversity of Science and Technology of China

Key Points

  • The aim is to review strategies for eliminating defects in MXene fiber fabrication to enhance their performance.
  • Reviewed recent literature on MXene defect elimination techniques.
  • Analyzed strategies for improving interfacial interactions and nanosheet alignment.
  • Summarized applications of conductive MXene fibers in electronic textiles.
  • Identified weak interfacial interactions and void defects as key performance hindrances.
  • Outlined successful strategies to strengthen interfacial interactions and improve alignment.
  • Highlighted diverse applications of MXene fibers in wearable technology.

Abstract

ABSTRACT Two‐dimensional (2D) transition metal carbides and nitrides (MXenes) nanosheets exhibit outstanding mechanical, electrical, electrochemical, and photothermal conversion properties, along with good solution processability, making them highly promising for the fabrication of high‐performance conductive MXene fibers. However, issues such as weak interfacial interactions, structural disorder, and nanosheet wrinkling often result in void defects, which hinder both load and electron transfer, thereby limiting the performance of macroscopic MXene fibers. This review systematically summarizes the recent progress in the defect‐elimination strategies for the fabrication of high‐strength and highly conductive MXene fibers, with a focus on performance and applications, from the perspectives of structure and interfacial design. Particular attention is given to strategies aimed at performance enhancement, especially those focused on strengthening interfacial interactions, improving alignment of MXene nanosheets, and eliminating voids, which are critical factors in assembling high‐performance conductive MXene fibers. Meanwhile, this review highlights the diverse multifunctional applications of MXene fibers in wearable electronic textiles. Finally, we conclude by discussing the key advantages and persistent challenges associated with various assembly structures, and present an outlook on the future design and development of high‐performance conductive MXene fibers, offering valuable insights for advancing research and practical applications of MXene fibers.

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Cite This Study

Liang et al. (2026) studied this question.

synapsesocial.com/papers/6994058c4e9c9e835dfd6864https://doi.org/10.1002/adma.202514754
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Also Consider

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

  1. 1Bioinspired MXene-based nanocomposite fibers2025
  2. 2Engineering MXene Nanomaterials: Structure–Property Relationships, Functional Design, and Emerging Technologies2026
  3. 3Synthesis and Surface Engineering of Two‐Dimensional MXenes for Advanced Functional Applications2026 · 1 citations
  4. 4In-plane molecular cord bridging as a method for boosting MXene fiber strength and toughness2026
  5. 5Enhancing the d–Electrocatalytic Activity of MXene Through Defect Engineering2026 · 5 citations