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Metal-Organic Framework-Derived Nanoporous Metal Oxides toward Supercapacitor Applications: Progress and Prospects

机译:金属 - 有机框架衍生的纳米多孔金属氧化物朝着超级电容器应用:进展和前景

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摘要

Transition metal oxides (TMOs) have attracted significant attention for energy storage applications such as supercapacitors due to their good electrical conductivity, high electrochemical response (by providing Faradaic reactions), low manufacturing costs, and easy processability. Despite exhibiting these attractive characteristics, the practical applications of TMOs for super capacitors are still relatively limited. This is largely due to their continuous Faradaic reactions, which can lead to major changes or destruction of their structure as well phase changes (in some cases) during cycling, leading to the degradation in their capacitive performance over time. Hence, there is an immediate need to develop new synthesis methods, which will readily provide stable porous architectures, controlled phase, as well as useful control over dimensions (1-D, 2-D, and 3-D) of the metal oxides for improving their performance in supercapacitor applications. Since its discovery in late 1990s, metal organic frameworks (MOFs) have influenced many fields of material science. In recent years, they have gained significant attention as precursors or templates for the derivation of porous metal oxide nanostructures and nanocomposites for next-generation supercapacitor applications. Even though these materials have widespread applications and have been widely studied in terms of their structural features and synthesis, it is still not clear how these materials will play an important role in the development of the supercapacitor field. In this review, we will summarize the recent developments in the field of MOF-derived porous metal oxide nanostructures and nanocomposites for supercapacitor applications. Furthermore, the current challenges along with the future trends and prospects in the application of these materials for supercapacitors will also be discussed.
机译:过渡金属氧化物(TMOS)由于其良好的导电性,高电化学响应(通过提供游览反应),低制造成本以及易于加工性,吸引了超级电容器等能量储存应用的显着关注。尽管表现出这些有吸引力的特点,但TMOS对于超级电容器的实际应用仍然相对有限。这主要是由于它们的连续活动反应,这可能导致其在循环期间的相变(在某些情况下)的结构进行重大变化或破坏,导致其电容性能随时间的降级。因此,立即需要开发新的合成方法,这将容易地提供稳定的多孔架构,受控相以及对金属氧化物的尺寸(1-D,2-D和3-D)的有用控制提高超级电容器应用中的性能。自20世纪90年代末的发现以来,金属有机框架(MOFS)影响了许多物质科学领域。近年来,它们对衍生多孔金属氧化物纳米结构和用于下一代超级电容器应用的纳米复合材料的前体或模板进行了重要关注。尽管这些材料具有广泛的应用,并且已经在结构特征和合成方面被广泛研究,但仍然尚不清楚这些材料如何在超级电容器领域发挥重要作用。在本次审查中,我们将总结Mof衍生多孔金属氧化物纳米结构和用于超级电容器应用的纳米复合材料领域的最新的发展。此外,还将讨论当前的挑战以及应用这些材料的未来趋势和前景的超级电容器的展望。

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