CNT-rGO-wrapped FeCo2O4 for asymmetric supercapacitor with enhanced power density and rate capability

Supercapacitors employing transition metal oxide electrodes exhibit larger specific capacities and energy densities. Performance enhancement of the transition metal oxide electrodes can be achieved by incorporation of carbonaceous materials, to form composite electrode. However, incorporation of car...

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Published in:JOURNAL OF MATERIALS SCIENCE-MATERIALS IN ELECTRONICS
Main Authors: Arsyad, Akmal; Saaid, Farish Irfal; Najihah, M. Z.; Hisam, R.; Woo, H. J.; Tseng, Tseung-Yuen; Winie, Tan
Format: Article
Language:English
Published: SPRINGER 2024
Subjects:
Online Access:https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-recordWOS:001360486900006
author Arsyad
Akmal; Saaid
Farish Irfal; Najihah
M. Z.; Hisam
R.; Woo
H. J.; Tseng
Tseung-Yuen; Winie
Tan
spellingShingle Arsyad
Akmal; Saaid
Farish Irfal; Najihah
M. Z.; Hisam
R.; Woo
H. J.; Tseng
Tseung-Yuen; Winie
Tan
CNT-rGO-wrapped FeCo2O4 for asymmetric supercapacitor with enhanced power density and rate capability
Engineering; Materials Science; Physics
author_facet Arsyad
Akmal; Saaid
Farish Irfal; Najihah
M. Z.; Hisam
R.; Woo
H. J.; Tseng
Tseung-Yuen; Winie
Tan
author_sort Arsyad
spelling Arsyad, Akmal; Saaid, Farish Irfal; Najihah, M. Z.; Hisam, R.; Woo, H. J.; Tseng, Tseung-Yuen; Winie, Tan
CNT-rGO-wrapped FeCo2O4 for asymmetric supercapacitor with enhanced power density and rate capability
JOURNAL OF MATERIALS SCIENCE-MATERIALS IN ELECTRONICS
English
Article
Supercapacitors employing transition metal oxide electrodes exhibit larger specific capacities and energy densities. Performance enhancement of the transition metal oxide electrodes can be achieved by incorporation of carbonaceous materials, to form composite electrode. However, incorporation of carbonaceous materials during the synthesis process can alter the morphological properties of the transition metal oxides. Iron cobaltite (FeCo2O4) (FCO) nanosheets exhibit large specific surface area and pore volume, which enhances the loading and diffusion of ions within the electrode. Herein, we designed composite electrodes made up of FCO, reduced graphene oxide (rGO), and functionalized multi-walled carbon nanotubes (f-MWCNTs) while retaining the high specific surface area of the FCO nanosheets. At 3 A g-1, the composite electrode exhibits specific capacity, Cs of 1091 C g-1 as compared with 555 C g-1 of the pristine FCO. Used in an asymmetric supercapacitor, the composite electrode demonstrates maximum energy density of 34 Wh kg-1, maximum power density of 4479 W kg-1, and 92% capacity retention after 5000 cycles. In contrast, the pristine FCO retains only 70% of its capacity after 3000 cycles.
SPRINGER
0957-4522
1573-482X
2024
35
33
10.1007/s10854-024-13819-3
Engineering; Materials Science; Physics

WOS:001360486900006
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-recordWOS:001360486900006
title CNT-rGO-wrapped FeCo2O4 for asymmetric supercapacitor with enhanced power density and rate capability
title_short CNT-rGO-wrapped FeCo2O4 for asymmetric supercapacitor with enhanced power density and rate capability
title_full CNT-rGO-wrapped FeCo2O4 for asymmetric supercapacitor with enhanced power density and rate capability
title_fullStr CNT-rGO-wrapped FeCo2O4 for asymmetric supercapacitor with enhanced power density and rate capability
title_full_unstemmed CNT-rGO-wrapped FeCo2O4 for asymmetric supercapacitor with enhanced power density and rate capability
title_sort CNT-rGO-wrapped FeCo2O4 for asymmetric supercapacitor with enhanced power density and rate capability
container_title JOURNAL OF MATERIALS SCIENCE-MATERIALS IN ELECTRONICS
language English
format Article
description Supercapacitors employing transition metal oxide electrodes exhibit larger specific capacities and energy densities. Performance enhancement of the transition metal oxide electrodes can be achieved by incorporation of carbonaceous materials, to form composite electrode. However, incorporation of carbonaceous materials during the synthesis process can alter the morphological properties of the transition metal oxides. Iron cobaltite (FeCo2O4) (FCO) nanosheets exhibit large specific surface area and pore volume, which enhances the loading and diffusion of ions within the electrode. Herein, we designed composite electrodes made up of FCO, reduced graphene oxide (rGO), and functionalized multi-walled carbon nanotubes (f-MWCNTs) while retaining the high specific surface area of the FCO nanosheets. At 3 A g-1, the composite electrode exhibits specific capacity, Cs of 1091 C g-1 as compared with 555 C g-1 of the pristine FCO. Used in an asymmetric supercapacitor, the composite electrode demonstrates maximum energy density of 34 Wh kg-1, maximum power density of 4479 W kg-1, and 92% capacity retention after 5000 cycles. In contrast, the pristine FCO retains only 70% of its capacity after 3000 cycles.
publisher SPRINGER
issn 0957-4522
1573-482X
publishDate 2024
container_volume 35
container_issue 33
doi_str_mv 10.1007/s10854-024-13819-3
topic Engineering; Materials Science; Physics
topic_facet Engineering; Materials Science; Physics
accesstype
id WOS:001360486900006
url https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-recordWOS:001360486900006
record_format wos
collection Web of Science (WoS)
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