Key Laboratory of Superlight Materials and Surface Technology, Ministry of Education, College of Material Science and Chemical Engineering, Harbin Engineering University, Harbin 150001, P. R. China.
Key Laboratory for Photonic and Electronic Bandgap Materials, Ministry of Education, School of Physics and Electronic Engineering, Harbin 150001, P. R. China.
Sci Rep. 2017 Feb 21;7:43116. doi: 10.1038/srep43116.
A facile strategy has been adopted for the preparation of ZnFeO/NRG composite by anchoring ultrasmall ZnFeO nanoparticles on nitrogen-doped reduced graphene (denoted as NRG) for high-performance supercapacitor electrode. Remarkably, the growth of ZnFeO nanocrystals, the reduction of graphitic oxide and the doping of nitrogen to graphene have been simultaneously achieved in one process. It is found that the NRG employed as substrate can not only control the formation of nano-sized ZnFeO, but also guarantee the high dispersion without any agglomeration. Benefiting from this novel combination and construction, the hybrid material has large surface area which can provide high exposure of active sites for easy access of electrolyte and fast electron transport. When served as supercapacitor electrode, the ZnFeO/NRG composite exhibits a favorable specific capacitance of 244 F/g at 0.5 A/g within the potential range from -1 to 0 V, desirable rate stability (retain 131.5 F/g at 10 A/g) and an admirable cycling durability of 83.8% at a scan rate of 100 mV/s after 5000 cycles. When employed as symmetric supercapacitor, the device demonstrates favorable performance. These satisfactory properties of the ZnFeO/NRG composite can make it be of great promise in the supercapacitor application.
一种简便的策略被用于制备 ZnFeO/NRG 复合材料,通过将超小的 ZnFeO 纳米粒子锚定在氮掺杂还原氧化石墨烯(NRG)上,用于高性能超级电容器电极。值得注意的是,ZnFeO 纳米晶的生长、氧化石墨的还原和氮掺杂到石墨烯在一个过程中同时实现。研究发现,NRG 不仅可以作为基底控制纳米级 ZnFeO 的形成,而且可以保证其高度分散而不发生任何团聚。得益于这种新颖的组合和结构,该复合材料具有大的表面积,可提供高暴露的活性位点,便于电解质的进入和快速电子传输。作为超级电容器电极,ZnFeO/NRG 复合材料在 -1 至 0 V 的电位范围内,在 0.5 A/g 的电流密度下表现出 244 F/g 的良好比电容,在 10 A/g 的电流密度下具有良好的倍率稳定性(保持 131.5 F/g),在 5000 次循环后,在 100 mV/s 的扫描速率下具有 83.8%的优异循环耐久性。当用作对称超级电容器时,该器件表现出良好的性能。ZnFeO/NRG 复合材料的这些满意性能使其在超级电容器应用中具有很大的应用前景。