高性能超级电容器用石墨烯-硒化过渡金属杂化材料研究进展

IF 7.5 2区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Basit Ali Khan, Farasast Haider, Prof. Tongsheng Zhang, Sana Zahra
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引用次数: 0

摘要

超级电容器由于其高功率密度、快速充放电能力和长循环寿命等优点,作为储能器件受到了广泛的关注。它们的性能主要受电极材料、电解质和工作电压窗的影响。其中,开发先进的电极材料对于提高能量密度、比电容和循环稳定性至关重要。本文综述了石墨烯基杂化材料的最新进展,特别是其与过渡金属硒化物(tms)在超级电容器中的应用。将石墨烯及其衍生物与具有多种氧化态和高理论电容的tms结合,可以获得具有优异电化学性能的杂化材料。研究表明,与碳化物、氮化物、磷化物和氧化物的石墨烯复合材料相比,这些材料具有更高的比电容、能量密度和功率密度。主要研究成果包括石墨烯- tms杂化物的合成策略、结构修饰和电化学性能。值得注意的是,这些混合材料在1 A/g时的比电容超过3105 F/g,功率密度高达5597.77 W/kg,能量密度达到126.3 Wh/kg,这使得它们在下一代超级电容器中非常有前景。这篇综述批判性地评估了目前最先进的技术,探讨了石墨烯和tms之间的协同效应,如改进的电荷转移动力学和结构稳定性,并确定了石墨烯- tms混合超级电容器的挑战和未来方向。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Advances in Graphene-Transition Metal Selenides Hybrid Materials for High-Performance Supercapacitors: A Review

Advances in Graphene-Transition Metal Selenides Hybrid Materials for High-Performance Supercapacitors: A Review

Supercapacitors have attracted significant attention as energy storage devices due to their high power density, rapid charge-discharge capability, and long cycle life. Their performance is primarily influenced by electrode materials, electrolytes, and operational voltage windows. Among these, the development of advanced electrode materials is crucial for enhancing energy density, specific capacitance, and cyclic stability. This review focuses on recent advancements in graphene-based hybrid materials, particularly their integration with transition metal selenides (TMSs) for supercapacitor applications. Combining graphene and its derivatives with TMSs, which possess multiple oxidation states and high theoretical capacitance, results in hybrids with superior electrochemical performance. Studies show that these materials achieve higher specific capacitance, energy density, and power density compared to graphene composites with carbides, nitrides, phosphides, and oxides. Key findings include synthesis strategies, structural modifications, and electrochemical properties of graphene-TMS hybrids. Notably, these hybrids have demonstrated specific capacitances exceeding 3105 F/g at 1 A/g, power densities up to 5597.77 W/kg, and energy densities reaching 126.3 Wh/kg, making them highly promising for next-generation supercapacitors. This review critically evaluates the current state-of-the-art, explores the synergistic effects between graphene and TMSs, such as improved charge transfer kinetics and structural stability, and identifies challenges and future directions in graphene-TMS hybrid supercapacitors

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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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