Karamat S, Kashif M, Anwar Sameen, Batool Unsia, Talha Muhammad, Khalique Uzma, Rahman Mohammed M
Electrochemical Material Synthesis and Devices Laboratory, Department of Physics, COMSATS University, Islamabad, 45550, Pakistan.
Advance Materials Lab, School of Electrical and Information Engineering, Tianjin University, 92 Weijin Road, Nankai District, Tianjin, 300072, China.
Chem Asian J. 2024 Jan 15;19(2):e202300919. doi: 10.1002/asia.202300919. Epub 2024 Jan 12.
Vanadium-carbide-based MXenes have bewitched the scientific community due to their distinctive characteristics, which make them potential candidates for several technological applications, such as supercapacitors (SCs), batteries, gas separation, biological sensors, and desalination. This article provides an overview of recent developments in the synthesis and applications of vanadium-carbide MXene in SCs. Vanadium carbide is one of the most difficult MXenes to synthesize, and various synthesis techniques, including electrochemical exfoliation and chemical etching, have been utilized to fabricate this material. Additionally, the review article also emphasizes the potential use of vanadium carbide MXene as SCs. Finally, the paper concludes with the challenges faced in the synthesis process and the prospects of vanadium carbide MXene-based material fabrication. Overall, this review article provides in-depth and detailed information on recent research on vanadium carbide MXene and its possible uses.
基于碳化钒的MXenes因其独特的特性而吸引了科学界的关注,这些特性使其成为超级电容器(SCs)、电池、气体分离、生物传感器和海水淡化等多种技术应用的潜在候选材料。本文概述了碳化钒MXene在超级电容器中的合成与应用的最新进展。碳化钒是最难合成的MXenes之一,人们已经采用了包括电化学剥离和化学蚀刻在内的各种合成技术来制备这种材料。此外,这篇综述文章还强调了碳化钒MXene作为超级电容器的潜在用途。最后,本文总结了合成过程中面临的挑战以及基于碳化钒MXene的材料制备的前景。总体而言,这篇综述文章提供了关于碳化钒MXene及其可能用途的最新研究的深入详细信息。