A comprehensive review on synthesis and application of MAX/MXenes as 2D nanoreactants with a glance at the modification of materials

MXenes公司 耐久性 材料科学 导电体 灵活性(工程) 纳米技术 表征(材料科学) 可扩展性 航空航天 电磁屏蔽 蚀刻(微加工) 钥匙(锁) 机械工程 电子设备和系统的热管理 计算机科学 表面改性 弹性(材料科学) 工艺工程 系统工程 标度系数 应变计
作者
Seyed Mohammad Taher Shahin,Majid Montazer
出处
期刊:Results in engineering [Elsevier BV]
卷期号:29: 108895-108895 被引量:5
标识
DOI:10.1016/j.rineng.2025.108895
摘要

MXene modification of polymeric materials represents a promising frontier for the development of advanced functional composites, particularly in smart textiles, flexible electronics, and multifunctional coatings. By exploiting MXene surface-active groups, metallic conductivity, and mechanical reinforcement capabilities, MXene–polymer systems can deliver high electromagnetic interference (EMI) shielding effectiveness often exceeding 40 dB at sub-millimeter thickness, electrical conductivities above 10 3 S cm −1 , and strain sensitivities with gauge factors above 9000 in optimized textile-based sensors. This review systematically surveys MAX phases as layered precursors, their synthesis routes, and their conversion into MXenes via top-down etching and emerging bottom-up chemical vapor deposition, with emphasis on safer, fluoride-free, and scalable processes. Particular attention is given to in situ characterization and first-principles calculations, which together clarify structural evolution, surface terminations, and property tuning during the transformation of MAX into MXene. The paper then critically compares MXene-based electronic, sensing, environmental, and biomedical applications, highlighting representative performance metrics such as ∼72 °C thermal regulation over thousands of seconds in MXene textile heaters and 90–91% optical transmittance combined with conductivities of around 3092 S cm −1 in transparent conductive electrodes. Three major contributions distinguish this work: (i) integrating MAX synthesis, MXene etching/delamination strategies, and MXene–polymer systems within a single framework; (ii) emphasizing relatively low-hazard, industrially relevant processing routes; and (iii) identifying key challenges in oxidation stability, environmental compatibility, and long-term mechanical durability of MXene-polymer composites. These insights provide a roadmap for designing next-generation MAX/MXene nanoreactants and MXene-modified polymeric materials for high-performance, real-world devices.

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