Fabrication of flexible electrode materials based on carbon-metal oxide and metal-metal oxide for supercapacitors

The rise of wearable electronics is increasing the demand of flexible energy storage devices, whereby the capacitance and electrochemical properties should be comparable to conventional rigid supercapacitors. The objective of this research is to explore different methods of fabricating flexible elec...

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Main Author: Shen, Jingjing
Other Authors: Kong Ling Bing
Format: Final Year Project
Language:English
Published: 2018
Subjects:
Online Access:http://hdl.handle.net/10356/74331
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-743312023-03-04T15:39:53Z Fabrication of flexible electrode materials based on carbon-metal oxide and metal-metal oxide for supercapacitors Shen, Jingjing Kong Ling Bing School of Materials Science and Engineering Yan Weili DRNTU::Engineering::Materials The rise of wearable electronics is increasing the demand of flexible energy storage devices, whereby the capacitance and electrochemical properties should be comparable to conventional rigid supercapacitors. The objective of this research is to explore different methods of fabricating flexible electrodes based on carbon-metal oxide and metal-metal oxide materials. The carbon-metal oxide electrode was prepared by simple two step procedure which involved vacuum filtration of vapour grown carbon nanofiber and commercial Chinese ink mixture onto cellulose paper, followed by electrodeposition of nickel hydroxide. Subsequent calcination of nickel hydroxide produced nickel oxide, which displayed better cycling stability and higher specific capacitance due to the increase in pores which facilitated the movement of OH- and resulted in higher charge storage. The novel use of Chinese ink was discovered to alleviate agglomeration of active CNF and the presence of carbon black particles increased the electrical conductivity of the electrode. The metal-metal oxide electrode was fabricated through electroless nickel plating, followed by electrodeposition of nickel oxide. The conductivity of nickel was proven to be higher than that of CNF, and due to the excellent adhesion of nickel oxide and nickel, the electrode exhibited much higher specific capacitance and improved electrochemical stability. Bachelor of Engineering (Materials Engineering) 2018-05-16T04:52:15Z 2018-05-16T04:52:15Z 2018 Final Year Project (FYP) http://hdl.handle.net/10356/74331 en Nanyang Technological University 45 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering::Materials
spellingShingle DRNTU::Engineering::Materials
Shen, Jingjing
Fabrication of flexible electrode materials based on carbon-metal oxide and metal-metal oxide for supercapacitors
description The rise of wearable electronics is increasing the demand of flexible energy storage devices, whereby the capacitance and electrochemical properties should be comparable to conventional rigid supercapacitors. The objective of this research is to explore different methods of fabricating flexible electrodes based on carbon-metal oxide and metal-metal oxide materials. The carbon-metal oxide electrode was prepared by simple two step procedure which involved vacuum filtration of vapour grown carbon nanofiber and commercial Chinese ink mixture onto cellulose paper, followed by electrodeposition of nickel hydroxide. Subsequent calcination of nickel hydroxide produced nickel oxide, which displayed better cycling stability and higher specific capacitance due to the increase in pores which facilitated the movement of OH- and resulted in higher charge storage. The novel use of Chinese ink was discovered to alleviate agglomeration of active CNF and the presence of carbon black particles increased the electrical conductivity of the electrode. The metal-metal oxide electrode was fabricated through electroless nickel plating, followed by electrodeposition of nickel oxide. The conductivity of nickel was proven to be higher than that of CNF, and due to the excellent adhesion of nickel oxide and nickel, the electrode exhibited much higher specific capacitance and improved electrochemical stability.
author2 Kong Ling Bing
author_facet Kong Ling Bing
Shen, Jingjing
format Final Year Project
author Shen, Jingjing
author_sort Shen, Jingjing
title Fabrication of flexible electrode materials based on carbon-metal oxide and metal-metal oxide for supercapacitors
title_short Fabrication of flexible electrode materials based on carbon-metal oxide and metal-metal oxide for supercapacitors
title_full Fabrication of flexible electrode materials based on carbon-metal oxide and metal-metal oxide for supercapacitors
title_fullStr Fabrication of flexible electrode materials based on carbon-metal oxide and metal-metal oxide for supercapacitors
title_full_unstemmed Fabrication of flexible electrode materials based on carbon-metal oxide and metal-metal oxide for supercapacitors
title_sort fabrication of flexible electrode materials based on carbon-metal oxide and metal-metal oxide for supercapacitors
publishDate 2018
url http://hdl.handle.net/10356/74331
_version_ 1759855368645640192