School of Chemistry and Chemical Engineering, Institute for Innovative Materials and Energy, Yangzhou University, Yangzhou, 225002 Jiangsu, People's Republic of China.
Nanotechnology. 2019 May 17;30(20):204002. doi: 10.1088/1361-6528/ab009f. Epub 2019 Jan 22.
As highly efficient and clean electrochemical energy storage devices, supercapacitors (SCs) have drawn widespread attention as promising alternatives to batteries in recent years. Among various electrode materials, iron oxide materials have been widely studied as negative SC electrode materials due to their broad working window in negative potential, ideal theoretical specific capacitance, good redox activity, abundant availability, and eco-friendliness. However, iron oxides still suffer from the problems of low stability and poor conductivity. In this review, recent progress in iron oxide-based nanomaterials, including FeO, FeO, FeO, and FeOOH, as electrode materials of SCs, is discussed. The nanostructure design and various synergistic effects of nanocomposites for improving the electrochemical performance of iron oxides are emphasized. Research on iron oxide-based symmetric/asymmetric SCs is also discussed. Future outlooks regarding iron oxides for SCs are likewise proposed.
作为高效、清洁的电化学储能器件,超级电容器 (SCs) 在近年来作为电池的替代品受到了广泛关注。在各种电极材料中,由于其在负电势下具有较宽的工作窗口、理想的理论比电容、良好的氧化还原活性、丰富的可用性和环境友好性,氧化铁材料已被广泛研究作为负 SC 电极材料。然而,氧化铁仍然存在稳定性差和导电性差的问题。本文综述了近年来以 FeO、FeO、FeO、FeOOH 等为电极材料的基于氧化铁的纳米材料在超级电容器中的研究进展。强调了纳米结构设计和纳米复合材料的各种协同效应在提高氧化铁电化学性能方面的作用。还讨论了基于氧化铁的对称/非对称超级电容器的研究。同样提出了氧化铁用于超级电容器的未来展望。