Mohammad Shiri Hamid, Ehsani Ali
Department of Chemistry, Payame Noor University, Iran.
Department of Chemistry, Faculty of Science, University of Qom, Qom, Iran.
J Colloid Interface Sci. 2017 Jun 1;495:102-110. doi: 10.1016/j.jcis.2017.01.097. Epub 2017 Feb 1.
Herein, we report for the first time a facile and cost-efficient synthesis of metal oxide nanostructures comprised of nanorods type without the use of any additive. Nd(OH) and NdO nanorods were obtained by ultrasound wave assisted pulse electrochemical deposition in a Nd(NO)·6HO nitrate bath. In addition, the interconnected nanorods were mesoporous leading to large electrochemical active sites for the redox reaction and fast ion transport within the NdO nanorods. Furthermore, for improving the electrochemical performance of conductive polymer, hybrid POAP/NdO films have then been fabricated by POAP electropolymerization in the presence of NdO nanorods as active electrodes for electrochemical supercapacitors. Surface and electrochemical analyses have been used for characterization of NdO and POAP/NdO composite films. Different electrochemical methods including galvanostatic charge discharge experiments, cyclic voltammetry and electrochemical impedance spectroscopy have been applied to study the system performance. Prepared composite film exhibited a significantly high specific capacity, high rate capability and excellent cycling stability. Importantly, electrochemical investigation show that POAP/NdO nanorods composite material has better properties than POAP without NdO nanorods, suggesting it can be used as supercapacitor electrode material with excellent specific capacitance (379Fg) which indicates this material is a promising electrode material for energy storage applications in high-performance pseudocapacitors.
在此,我们首次报道了一种简便且经济高效的合成方法,用于制备由纳米棒组成的金属氧化物纳米结构,且无需使用任何添加剂。通过在硝酸钕(Nd(NO₃)₃·6H₂O)浴中进行超声波辅助脉冲电化学沉积,获得了氢氧化钕(Nd(OH)₃)和氧化钕(Nd₂O₃)纳米棒。此外,相互连接的纳米棒具有介孔结构,为氧化还原反应提供了大量的电化学活性位点,并使离子在氧化钕纳米棒内快速传输。此外,为了提高导电聚合物的电化学性能,在氧化钕纳米棒存在的情况下,通过聚邻氨基苯酚(POAP)电聚合制备了混合POAP/Nd₂O₃薄膜,作为电化学超级电容器的活性电极。表面和电化学分析用于表征Nd₂O₃和POAP/Nd₂O₃复合薄膜。采用了不同的电化学方法,包括恒电流充放电实验、循环伏安法和电化学阻抗谱,来研究该体系的性能。制备的复合薄膜表现出显著高的比容量、高倍率性能和优异的循环稳定性。重要的是,电化学研究表明,POAP/Nd₂O₃纳米棒复合材料比不含氧化钕纳米棒的POAP具有更好的性能,这表明它可以用作具有优异比电容(379 F/g)的超级电容器电极材料,这表明该材料是高性能赝电容器储能应用中有前景的电极材料。