Facile synthesis of Al-doped NiO nanosheet arrays for high-performance supercapacitors

Electrode material design is the key to the development of asymmetric supercapacitors with high electrochemical performances and stability. In this work, Al-doped NiO nanosheet arrays were synthesized using a facile hydrothermal method followed by a calcination process, and the synthesized arrays ex...

Full description

Bibliographic Details
Main Authors: Jinping Chen, Xianyun Peng, Lida Song, Lihan Zhang, Xijun Liu, Jun Luo
Format: Article
Language:English
Published: The Royal Society 2018-01-01
Series:Royal Society Open Science
Subjects:
Online Access:https://royalsocietypublishing.org/doi/pdf/10.1098/rsos.180842
id doaj-2de442bddf2b43e0b0a8c8cf2ea6bf7a
record_format Article
spelling doaj-2de442bddf2b43e0b0a8c8cf2ea6bf7a2020-11-25T03:06:28ZengThe Royal SocietyRoyal Society Open Science2054-57032018-01-0151110.1098/rsos.180842180842Facile synthesis of Al-doped NiO nanosheet arrays for high-performance supercapacitorsJinping ChenXianyun PengLida SongLihan ZhangXijun LiuJun LuoElectrode material design is the key to the development of asymmetric supercapacitors with high electrochemical performances and stability. In this work, Al-doped NiO nanosheet arrays were synthesized using a facile hydrothermal method followed by a calcination process, and the synthesized arrays exhibited a superior pseudocapacitive performance, including a favourable specific capacitance of 2253 ± 105 F g−1 at a current density of 1 A g−1, larger than that of an undoped NiO electrode (1538 ± 80 F g−1). More importantly, the arrays showed a high-rate capability (75% capacitance retention at 20 A g−1) and a high cycling stability (approx. 99% maintained after 5000 cycles). The above efficient capacitive performance benefits from the large electrochemically active area and enhanced conductivity of the arrays. Furthermore, an assembled asymmetric supercapacitor based on the Al-doped NiO arrays and N-doped multiwalled carbon nanotube ones delivered a high specific capacitance of 192 ± 23 F g−1 at 0.4 A g−1 with a high-energy density of 215 ± 15 Wh kg−1 and power density of 21.6 kW kg−1. Additionally, the asymmetric device exhibited a durable cyclic stability (approx. 100% retention after 5000 cycles). This work with the proposed doping method will be beneficial to the construction of high-performance supercapacitor systems.https://royalsocietypublishing.org/doi/pdf/10.1098/rsos.180842al dopingnio nanosheet arrayselectrochemical propertyasymmetric supercapacitor
collection DOAJ
language English
format Article
sources DOAJ
author Jinping Chen
Xianyun Peng
Lida Song
Lihan Zhang
Xijun Liu
Jun Luo
spellingShingle Jinping Chen
Xianyun Peng
Lida Song
Lihan Zhang
Xijun Liu
Jun Luo
Facile synthesis of Al-doped NiO nanosheet arrays for high-performance supercapacitors
Royal Society Open Science
al doping
nio nanosheet arrays
electrochemical property
asymmetric supercapacitor
author_facet Jinping Chen
Xianyun Peng
Lida Song
Lihan Zhang
Xijun Liu
Jun Luo
author_sort Jinping Chen
title Facile synthesis of Al-doped NiO nanosheet arrays for high-performance supercapacitors
title_short Facile synthesis of Al-doped NiO nanosheet arrays for high-performance supercapacitors
title_full Facile synthesis of Al-doped NiO nanosheet arrays for high-performance supercapacitors
title_fullStr Facile synthesis of Al-doped NiO nanosheet arrays for high-performance supercapacitors
title_full_unstemmed Facile synthesis of Al-doped NiO nanosheet arrays for high-performance supercapacitors
title_sort facile synthesis of al-doped nio nanosheet arrays for high-performance supercapacitors
publisher The Royal Society
series Royal Society Open Science
issn 2054-5703
publishDate 2018-01-01
description Electrode material design is the key to the development of asymmetric supercapacitors with high electrochemical performances and stability. In this work, Al-doped NiO nanosheet arrays were synthesized using a facile hydrothermal method followed by a calcination process, and the synthesized arrays exhibited a superior pseudocapacitive performance, including a favourable specific capacitance of 2253 ± 105 F g−1 at a current density of 1 A g−1, larger than that of an undoped NiO electrode (1538 ± 80 F g−1). More importantly, the arrays showed a high-rate capability (75% capacitance retention at 20 A g−1) and a high cycling stability (approx. 99% maintained after 5000 cycles). The above efficient capacitive performance benefits from the large electrochemically active area and enhanced conductivity of the arrays. Furthermore, an assembled asymmetric supercapacitor based on the Al-doped NiO arrays and N-doped multiwalled carbon nanotube ones delivered a high specific capacitance of 192 ± 23 F g−1 at 0.4 A g−1 with a high-energy density of 215 ± 15 Wh kg−1 and power density of 21.6 kW kg−1. Additionally, the asymmetric device exhibited a durable cyclic stability (approx. 100% retention after 5000 cycles). This work with the proposed doping method will be beneficial to the construction of high-performance supercapacitor systems.
topic al doping
nio nanosheet arrays
electrochemical property
asymmetric supercapacitor
url https://royalsocietypublishing.org/doi/pdf/10.1098/rsos.180842
work_keys_str_mv AT jinpingchen facilesynthesisofaldopednionanosheetarraysforhighperformancesupercapacitors
AT xianyunpeng facilesynthesisofaldopednionanosheetarraysforhighperformancesupercapacitors
AT lidasong facilesynthesisofaldopednionanosheetarraysforhighperformancesupercapacitors
AT lihanzhang facilesynthesisofaldopednionanosheetarraysforhighperformancesupercapacitors
AT xijunliu facilesynthesisofaldopednionanosheetarraysforhighperformancesupercapacitors
AT junluo facilesynthesisofaldopednionanosheetarraysforhighperformancesupercapacitors
_version_ 1724673973594095616