Gokul Eswaran Surulivel, Rashad Mohamed, Santhana Krishna Kumar Alagarsamy, El-Mahdy Ahmed F M
Department of Materials and Optoelectronic Science, National Sun Yat-sen University, Kaohsiung, 80424, Taiwan.
Physics Department, Faculty of Science, University of Tabuk, Tabuk, 71491, Saudi Arabia.
Chem Asian J. 2025 Feb 17;20(4):e202401181. doi: 10.1002/asia.202401181. Epub 2025 Jan 5.
MXenes is a rapidly emerging class of two-dimensional (2D) materials. It exhibits unique properties that make it suitable for a wide range of applications. This review provides a comprehensive overview of the synthesis and processing techniques for MXenes including both bottom-up and top-down approaches. The synthesis of MXene-based composites is explored in detail focusing on Mxene-carbon composites, Mxene-metal oxides, Mxene-metal sulfides, Mxene-polymer composites and MXene-ceramic composites. Key properties of MXenes are examined including structural, electrical, morphological, optical, mechanical, chemical stability, electrical and thermal properties, conductivity, magnetic properties, dielectric charge and catalytic properties. Characterization techniques used to study these properties is also reviewed. Their 2D structure provides a high surface area and unique interlayer spacing, making MXenes ideal for applications in energy storage devices (like supercapacitors and batteries) where surface area and ion transport are critical for performance. The diverse applications of MXenes are presented emphasizing their use in batteries, catalysis, sensors, environmental remediation and supercapacitors. Special attention is given to the supercapacitor applications of MXenes of their potential in energy storage devices. Due to their high capacitance, fast charge/discharge rates, and excellent stability, MXenes are used in supercapacitors, lithium-ion batteries, and sodium-ion batteries. They can store energy more efficiently than many other materials, making them valuable in the quest for efficient, sustainable energy solutions. The progress in MXene supercapacitor devices is providing insights into the latest advancements and future prospects. MXenes are highlighted as versatile materials with significant potential in various technological fields particularly in energy storage. Future research directions and challenges are also outlined for ongoing and future studies in this dynamic area of materials science.
MXenes是一类迅速兴起的二维材料。它具有独特的性能,使其适用于广泛的应用。本文综述了MXenes的合成和加工技术,包括自下而上和自上而下的方法。详细探讨了基于MXene的复合材料的合成,重点是MXene-碳复合材料、MXene-金属氧化物、MXene-金属硫化物、MXene-聚合物复合材料和MXene-陶瓷复合材料。研究了MXenes的关键性能,包括结构、电学、形态、光学、机械、化学稳定性、电学和热学性能、导电性、磁性、介电电荷和催化性能。还综述了用于研究这些性能的表征技术。它们的二维结构提供了高表面积和独特的层间距,使MXenes非常适合用于能量存储设备(如超级电容器和电池),在这些设备中,表面积和离子传输对性能至关重要。介绍了MXenes的各种应用,强调了它们在电池、催化、传感器、环境修复和超级电容器中的应用。特别关注了MXenes在超级电容器中的应用及其在能量存储设备中的潜力。由于其高电容、快速充放电速率和优异的稳定性,MXenes被用于超级电容器、锂离子电池和钠离子电池。它们比许多其他材料能更有效地存储能量,这使它们在寻求高效、可持续的能源解决方案中具有重要价值。MXene超级电容器器件的进展为最新进展和未来前景提供了见解。MXenes被视为具有多种潜力的多功能材料,尤其在能量存储等各个技术领域。还概述了材料科学这一动态领域正在进行的和未来研究的未来研究方向和挑战。