Xing Jiale, Du Jing, Zhang Xuan, Shao Yubo, Zhang Ting, Xu Cailing
State Key Laboratory of Applied Organic Chemistry, Key Laboratory of Nonferrous Metal Chemistry and Resources Utilization of Gansu Province, Laboratory of Special Function Materials and Structure Design of the Ministry of Education, College of Chemistry and Chemical Engineering, Lanzhou University, Lanzhou 730000, P. R. China.
Dalton Trans. 2017 Aug 14;46(30):10064-10072. doi: 10.1039/c7dt01910f. Epub 2017 Jul 21.
Recently, transition metal-based nanomaterials have played a key role in the applications of supercapacitors. In this study, nickel phosphide (Ni-P) was simply combined with NiCo LDH via facile phosphorization of Ni foam and subsequent electrodeposition to form core-shell nanorod arrays on the Ni foam; the Ni-P@NiCo LDH was then directly used for a pseudocapacitive electrode. Owing to the splendid synergistic effect between Ni-P and NiCo LDH nanosheets as well as the hierarchical structure of 1D nanorods, 2D nanosheets, and 3D Ni foam, the hybrid electrode exhibited significantly enhanced electrochemical performances. The Ni-P@NiCo LDH electrode showed a high specific capacitance of 12.9 F cm at 5 mA cm (3470.5 F g at a current density of 1.3 A g) that remained as high as 6.4 F cm at a high current density of 100 mA cm (1700 F g at 27 A g) and excellent cycling stability (96% capacity retention after 10 000 cycles at 40 mA cm). Furthermore, the asymmetric supercapacitors (ASCs) were assembled using Ni-P@NiCo LDH as a positive electrode and activated carbon (AC) as a negative electrode. The obtained ASCs delivered remarkable energy density and power density as well as good cycling performance. The enhanced electrochemical activities open a new avenue for the development of supercapacitors.
近年来,过渡金属基纳米材料在超级电容器的应用中发挥了关键作用。在本研究中,通过泡沫镍的简易磷化处理及随后的电沉积,将磷化镍(Ni-P)与NiCo LDH简单结合,在泡沫镍上形成核壳纳米棒阵列;然后将Ni-P@NiCo LDH直接用作赝电容电极。由于Ni-P与NiCo LDH纳米片之间出色的协同效应以及一维纳米棒、二维纳米片和三维泡沫镍的分级结构,该混合电极展现出显著增强的电化学性能。Ni-P@NiCo LDH电极在5 mA cm时显示出12.9 F cm的高比电容(在1.3 A g的电流密度下为3470.5 F g),在100 mA cm的高电流密度下(在27 A g时为1700 F g)仍高达6.4 F cm,并且具有出色的循环稳定性(在40 mA cm下循环10000次后容量保持率为96%)。此外,以Ni-P@NiCo LDH作为正极、活性炭(AC)作为负极组装了非对称超级电容器(ASC)。所获得的ASC具有显著的能量密度和功率密度以及良好 的循环性能。电化学活性的增强为超级电容器的发展开辟了一条新途径。