TY - JOUR
T1 - Three-dimensional tubular arrays of MnO 2-NiO nanoflakes with high areal pseudocapacitance
AU - Liu, Jinping
AU - Jiang, Jian
AU - Bosman, Michel
AU - Fan, Hong Jin
PY - 2012/2/14
Y1 - 2012/2/14
N2 - Transition metal oxide nanostructures are current research focus for energy storage applications. We herein report the synthesis of MnO 2-NiO nanoflake-assembled tubular array on stainless steel substrate to function as pseudocapacitor electrode by programmed three-dimensional (3D) interfacial reactions, in which the ZnO nanowire array is employed as the low-cost in situ sacrificial template. In this 3D nanoelectrode, MnO 2 and NiO nanoflakes share the same "root" and form an integrated hierarchical structure, which adheres robustly to the substrate. Importantly, both MnO 2 and NiO contribute to the charge storage. The highly porous structure, which allows easy penetration of the electrolyte, gives additional merits. Detailed electrochemical characterization reveals that the assembled MnO 2-NiO array exhibits good rate performance and cycle life. In particular, it displays an areal capacitance that is four orders of magnitude higher than that of carbonaceous materials and significantly superior to those of previous directly-grown pseudocapacitive nanostructure films.
AB - Transition metal oxide nanostructures are current research focus for energy storage applications. We herein report the synthesis of MnO 2-NiO nanoflake-assembled tubular array on stainless steel substrate to function as pseudocapacitor electrode by programmed three-dimensional (3D) interfacial reactions, in which the ZnO nanowire array is employed as the low-cost in situ sacrificial template. In this 3D nanoelectrode, MnO 2 and NiO nanoflakes share the same "root" and form an integrated hierarchical structure, which adheres robustly to the substrate. Importantly, both MnO 2 and NiO contribute to the charge storage. The highly porous structure, which allows easy penetration of the electrolyte, gives additional merits. Detailed electrochemical characterization reveals that the assembled MnO 2-NiO array exhibits good rate performance and cycle life. In particular, it displays an areal capacitance that is four orders of magnitude higher than that of carbonaceous materials and significantly superior to those of previous directly-grown pseudocapacitive nanostructure films.
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U2 - 10.1039/c1jm14804d
DO - 10.1039/c1jm14804d
M3 - Article
AN - SCOPUS:84862909050
SN - 0959-9428
VL - 22
SP - 2419
EP - 2426
JO - Journal of Materials Chemistry
JF - Journal of Materials Chemistry
IS - 6
ER -