Hegazy H H, Khan Junaid, Shakeel Noshaba, Alabdullkarem Eman A, Saleem Muhammad Imran, Alrobei Hussein, Yahia I S
Central Labs, King Khalid University, AlQura'a P. O. Box 960 Abha Saudi Arabia.
Department of Physics, Faculty of Science, King Khalid University P.O. Box 9004 Abha Saudi Arabia.
RSC Adv. 2024 Oct 18;14(45):32958-32977. doi: 10.1039/d4ra05473c. eCollection 2024 Oct 17.
The pursuit of efficient and sustainable energy storage solutions has fueled significant interest in the development of advanced materials for supercapacitors. Among these, two-dimensional (2D) materials undoubtingly have emerged as promising candidates due to their unique structural and electrochemical properties. To address the inherent challenges such as restacking, limited ion-accessibility, limited scalability, stability under operational conditions, and the intricate balance between surface area and conductivity that hinder the practical application of 2D materials, this article delves into innovative approaches and emerging strategies and prospects that aim to enhance their performance and durability. A systematic exploration of synthesis methods, structural characteristics, and electrochemical performance as supercapacitor electrodes of key 2D materials, including graphene, MXenes, transition metal dichalcogenides (TMDCs), black phosphorous and phosphorene and their composites has been discussed. The discussion will extend to recent breakthroughs and innovations, shedding light on how researchers are leveraging the unique properties of 2D materials to overcome existing challenges in supercapacitor technology. Beyond mere documentation, this review seeks to inspire future research directions, foster interdisciplinary collaborations, and contribute to the ongoing evolution of energy storage technologies towards a more sustainable and efficient future.
对高效且可持续的储能解决方案的追求激发了人们对开发用于超级电容器的先进材料的浓厚兴趣。其中,二维(2D)材料因其独特的结构和电化学特性无疑已成为有前景的候选材料。为应对诸如重新堆叠、离子可及性有限、可扩展性受限、运行条件下的稳定性以及阻碍二维材料实际应用的表面积与电导率之间的复杂平衡等固有挑战,本文深入探讨旨在提高其性能和耐久性的创新方法、新兴策略及前景。本文讨论了对包括石墨烯、MXenes、过渡金属二硫属化物(TMDCs)、黑磷及其复合材料在内的关键二维材料作为超级电容器电极的合成方法、结构特征和电化学性能的系统探索。讨论将延伸至近期的突破与创新,阐明研究人员如何利用二维材料的独特特性来克服超级电容器技术中的现有挑战。除了单纯的记录,本综述旨在激发未来的研究方向,促进跨学科合作,并为储能技术朝着更可持续和高效的未来不断发展做出贡献。