Rational design of novel ultra-small amorphous Fe2O3 nanodots/graphene heterostructures for all-solid-state asymmetric supercapacitors
Constructing graphene-based heterostructures with large interfacial area is an efficient approach to enhance the electrochemical performance of supercapacitors but remains great challenges in their synthesis. Herein, a novel ultra-small amorphous Fe 2 O 3 nanodots/graphene heterostructure (a-Fe 2 O...
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Published in | Nano research Vol. 14; no. 4; pp. 953 - 960 |
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Main Authors | , , , , , , , , , |
Format | Journal Article |
Language | English |
Published |
Beijing
Tsinghua University Press
01.04.2021
Springer Nature B.V |
Subjects | |
Online Access | Get full text |
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Summary: | Constructing graphene-based heterostructures with large interfacial area is an efficient approach to enhance the electrochemical performance of supercapacitors but remains great challenges in their synthesis. Herein, a novel ultra-small amorphous Fe
2
O
3
nanodots/graphene heterostructure (a-Fe
2
O
3
NDs/RGO) aerogel was facilely synthesized via excessive metal-ion-induced self-assembly and subsequent calcination route using Prussian blue/graphene oxide (PB/GO) composite aerogel as precursors. The deliberately designed a-Fe
2
O
3
NDs/RGO heterostructure offers a highly interconnected porous conductive network, large heterostructure interfacial area, and plenty of accessible active sites, greatly facilitating the electron transfer, electrolyte diffusion, and pseudocapacitive reactions. The obtained a-Fe
2
O
3
NDs/RGO aerogel could be used as flexible free-standing electrodes after mechanical compression, which exhibited a significantly enhanced specific capacitance of 347.4 F·g
−1
at 1 A·g
−1
, extraordinary rate capability of 184 F·g
−1
at 10 A·g
−1
, and decent cycling stability. With the as-prepared a-Fe
2
O
3
NDs/RGO as negative electrodes and the Co
3
O
4
NDs/RGO as positive electrodes, an all-solid-state asymmetric supercapacitor (a-Fe
2
O
3
NDs/RGO//Co
3
O
4
NDs/RGO asymmetric supercapacitor (ASC)) was assembled, which delivered a high specific capacitance of 69.1 F·g
−1
at 1 A·g
−1
and an impressive energy density of 21.6 W·h·kg
−1
at 750 W·kg
−1
, as well as good cycling stability with a capacity retention of 94.3% after 5,000 cycles. This work provides a promising avenue to design high-performance graphene-based composite electrodes and profound inspiration for developing advanced flexible energy-storage devices. |
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ISSN: | 1998-0124 1998-0000 |
DOI: | 10.1007/s12274-020-3131-z |