Article ID Journal Published Year Pages File Type
1285289 Journal of Power Sources 2016 10 Pages PDF
Abstract

•Layered double hydroxide is grown on nickel foam by liquid phase deposition method.•The electrode shows excellent performance at high current density (50 A g−1).•The assembled hybrid supercapacitor exhibits good electrochemical performance.

The synthesis of layered double hydroxide (LDH) as electroactive material has been well reported; however, fabricating an LDH electrode with excellent electrochemical performance at high current density remains a challenge. In this paper, we report a 3D hierarchical porous flower-like NiAl-LDH grown on nickel foam (NF) through a liquid-phase deposition method as a high-performance binder-free electrode for energy storage. With large ion-accessible surface area as well as efficient electron and ion transport pathways, the prepared LDH-NF electrode achieves high specific capacity (1250 C g−1 at 2 A g−1 and 401 C g−1 at 50 A g−1) after 5000 cycles of activation at 20 A g−1 and high cycling stability (76.7% retention after another 5000 cycles at 50 A g−1), which is higher than those of most previously reported NiAl-LDH-based materials. Moreover, a hybrid supercapacitor with LDH-NF as the positive electrode and porous graphene nanosheet coated on NF (GNS-NF) as the negative electrode, delivers high energy density (30.2 Wh kg−1 at a power density of 800 W kg−1) and long cycle life, which outperforms the other devices reported in the literature. This study shows that the prepared LDH-NF electrode offers great potential in energy storage device applications.

Graphical abstractA hybrid supercapacitor (LDH-NF//GNS-NF) delivers a high energy density (30.2 Wh kg−1 at a power density of 800 W kg−1) and long cycle life (15,000 cycles) with a specific capacity of 56 C g−1 (70% retention at 10 A g−1).Figure optionsDownload full-size imageDownload as PowerPoint slide

Related Topics
Physical Sciences and Engineering Chemistry Electrochemistry
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