Empowering Green Energy Storage Systems with MXene for a Sustainable Future.

IF 7 2区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
M A Zaed, Norulsamani Abdullah, K H Tan, M H Hossain, R Saidur
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Abstract

Green energy storage systems play a vital role in enabling a sustainable future by facilitating the efficient integration and utilization of renewable energy sources. The main problems related to two-dimensional (2D) materials are their difficult synthesis process, high cost, and bulk production, which hamper their performance. In recent years, MXenes have emerged as highly promising materials for enhancing the performance of energy storage devices due to their unique properties, including their high surface area, excellent electrical and thermal conductivity, and exceptional chemical stability. This paper presents a comprehensive scientific approach that explores the potential of MXenes for empowering green energy storage systems. Which indicates the novelty of the article. The paper reviews the latest advances in MXene synthesis techniques. Furthermore, investigates the application of MXenes in various energy storage technologies, such as lithium-ion batteries, supercapacitors, and emerging energy storage devices. The utilization of MXenes as electrodes in flexible and transparent energy storage devices is also discussed. Moreover, the paper highlights the potential of MXenes in addressing key challenges in energy storage, including enhancing energy storage capacity, improving cycling stability, and promoting fast charging and discharging rates. Additionally, industrial application and cost estimation of MXenes are explored. As the output of the work, we analyzed that HF and modified acid (LiF and HCl) are the established methods for synthesis. Due to high electrical conductivity, MXene materials are showing extraordinary results in energy storage and related applications. Making a composite hydrothermal method is one of the established methods. This scientific paper underscores the significant contributions of MXenes in advancing green energy storage systems, paving the way for a sustainable future driven by renewable energy sources. To facilitate the research, this article includes technical challenges and future recommendations for further research gaps in the topic.

利用 MXene 增强绿色储能系统的能力,实现可持续未来。
绿色储能系统通过促进可再生能源的有效整合和利用,在实现可持续发展的未来中发挥着至关重要的作用。二维(2D)材料存在的主要问题是合成过程困难、成本高昂和批量生产,这些都影响了它们的性能。近年来,MXenes 因其独特的性能,包括高比表面积、出色的导电性和导热性以及优异的化学稳定性,已成为极有希望提高储能设备性能的材料。本文介绍了一种全面的科学方法,探讨了 MXenes 在增强绿色储能系统方面的潜力。这表明了文章的新颖性。论文回顾了 MXene 合成技术的最新进展。此外,还研究了二氧化二烯在各种储能技术中的应用,如锂离子电池、超级电容器和新兴储能设备。还讨论了在柔性和透明储能设备中将二氧化二烯用作电极的问题。此外,论文还强调了 MXenes 在应对储能领域关键挑战方面的潜力,包括提高储能容量、改善循环稳定性以及促进快速充放电速率。此外,还探讨了 MXenes 的工业应用和成本估算。作为研究成果,我们分析了氢氟酸和改性酸(LiF 和 HCl)的成熟合成方法。由于具有高导电性,MXene 材料在储能和相关应用中显示出非凡的效果。复合水热法是成熟的方法之一。这篇科学论文强调了二氧化二烯类材料在推动绿色储能系统方面的重大贡献,为可再生能源驱动的可持续未来铺平了道路。为促进研究工作,本文提出了技术挑战和未来建议,以进一步填补该课题的研究空白。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Chemical record
Chemical record 化学-化学综合
CiteScore
11.00
自引率
3.00%
发文量
188
审稿时长
>12 weeks
期刊介绍: The Chemical Record (TCR) is a "highlights" journal publishing timely and critical overviews of new developments at the cutting edge of chemistry of interest to a wide audience of chemists (2013 journal impact factor: 5.577). The scope of published reviews includes all areas related to physical chemistry, analytical chemistry, inorganic chemistry, organic chemistry, polymer chemistry, materials chemistry, bioorganic chemistry, biochemistry, biotechnology and medicinal chemistry as well as interdisciplinary fields. TCR provides carefully selected highlight papers by leading researchers that introduce the author''s own experimental and theoretical results in a framework designed to establish perspectives with earlier and contemporary work and provide a critical review of the present state of the subject. The articles are intended to present concise evaluations of current trends in chemistry research to help chemists gain useful insights into fields outside their specialization and provide experts with summaries of recent key developments.
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