He Yao, Zhou Weiqiang, Xu Jingkun
Flexible Electronics Innovation Institute (FEII), Jiangxi Science and Technology Normal University, Nanchang, 330013, P. R. China.
Jiangxi Engineering Laboratory of Waterborne Coatings, Jiangxi Science and Technology Normal University, Nanchang, 330013, P. R. China.
ChemSusChem. 2022 Jun 22;15(12):e202200469. doi: 10.1002/cssc.202200469. Epub 2022 May 13.
Supercapacitors (SCs) can effectively alleviate problems such as energy shortage and serious greenhouse effect. The properties of electrode materials directly affect the performance of SCs. Rare earth (RE) is known as "modern industrial vitamins", and their functional materials have been listed as key strategic materials. In the past few years, the number of scientific reports on RE-based nanomaterials for SCs has increased rapidly, confirming that adding RE elements or compounds to the host electrode materials with various nanostructured morphologies can greatly enhance their electrochemical performance. Although RE-based nanomaterials have made rapid progress in SCs, there are very few works providing a comprehensive survey of this field. In view of this, a comprehensive overview of RE-based nanomaterials for SCs is provided here, including the preparation methods, nanostructure engineering, compounds, and composites, along with their capacitance performances. The structure-activity relationships are discussed and highlighted. Meanwhile, the future challenges and perspectives are also pointed out. This Review can not only provide guidance for the further development of SCs but also arouse great interest in RE-based nanomaterials in other research fields such as electrocatalysis, photovoltaic cells, and lithium batteries.
超级电容器(SCs)能够有效缓解能源短缺和严重的温室效应等问题。电极材料的性能直接影响超级电容器的性能。稀土(RE)被誉为“现代工业维生素”,其功能材料已被列为关键战略材料。在过去几年中,关于用于超级电容器的稀土基纳米材料的科学报道数量迅速增加,这证实了在具有各种纳米结构形态的主体电极材料中添加稀土元素或化合物可以极大地提高其电化学性能。尽管稀土基纳米材料在超级电容器领域取得了快速进展,但很少有研究对该领域进行全面综述。鉴于此,本文提供了对用于超级电容器的稀土基纳米材料的全面概述,包括制备方法、纳米结构工程、化合物和复合材料,以及它们的电容性能。讨论并强调了结构-活性关系。同时,也指出了未来的挑战和前景。这篇综述不仅可以为超级电容器的进一步发展提供指导,还能激发其他研究领域如电催化、光伏电池和锂电池中对稀土基纳米材料的极大兴趣。