Fabrication and characterization of flexible-conductive nanocomposites

There is a rising enthusiasm in developing supercapacitors for the use of energy storage. The current challenge is to develop a supercapacitor that has an energy capacity comparable to traditional batteries while retaining the fast charging benefits of capacitors. The objective of this research proj...

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Main Author: Lau, Jun Jie
Other Authors: Kong Ling Bing
Format: Final Year Project
Language:English
Published: 2016
Subjects:
Online Access:http://hdl.handle.net/10356/67101
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-671012023-03-04T15:43:22Z Fabrication and characterization of flexible-conductive nanocomposites Lau, Jun Jie Kong Ling Bing School of Materials Science and Engineering DRNTU::Engineering There is a rising enthusiasm in developing supercapacitors for the use of energy storage. The current challenge is to develop a supercapacitor that has an energy capacity comparable to traditional batteries while retaining the fast charging benefits of capacitors. The objective of this research project is to develop a novel ternary composite electrode material made up of flexible cellulose paper and metal oxide to fabricate a solid-state flexible supercapacitor. The use of lightweight and easily-fabricated MnO2/carbon nanofiber (CNF)-based flexible networks as binder-free electrodes and a PVA/H2SO4 electrolyte for the formation of stretchable solid-state supercapacitors was examined. The active electrodes were fabricated from 3D porous MnO2 assembled from cross-walled and interconnected sheet-architectural MnO2 on CNF based paper substrates. These substrates were fabricated through a simple two-step procedure involving the coating of vapor grown carbon nanofibers onto qualitative filter paper by a vacuum filtration process and subsequent electrodeposition of the interconnected MnO2 sheets onto the CNF-coated paper. The CNF/Paper serves as an active and good conductive flexible substrate for an electrode in supercapacitors. Correspondingly, the nanoporous structure by the MnO2 facilitates the effective contact range of the active material with the electrolyte, thus increasing the capacitance. Bachelor of Engineering (Materials Engineering) 2016-05-11T08:50:35Z 2016-05-11T08:50:35Z 2016 Final Year Project (FYP) http://hdl.handle.net/10356/67101 en Nanyang Technological University 46 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
spellingShingle DRNTU::Engineering
Lau, Jun Jie
Fabrication and characterization of flexible-conductive nanocomposites
description There is a rising enthusiasm in developing supercapacitors for the use of energy storage. The current challenge is to develop a supercapacitor that has an energy capacity comparable to traditional batteries while retaining the fast charging benefits of capacitors. The objective of this research project is to develop a novel ternary composite electrode material made up of flexible cellulose paper and metal oxide to fabricate a solid-state flexible supercapacitor. The use of lightweight and easily-fabricated MnO2/carbon nanofiber (CNF)-based flexible networks as binder-free electrodes and a PVA/H2SO4 electrolyte for the formation of stretchable solid-state supercapacitors was examined. The active electrodes were fabricated from 3D porous MnO2 assembled from cross-walled and interconnected sheet-architectural MnO2 on CNF based paper substrates. These substrates were fabricated through a simple two-step procedure involving the coating of vapor grown carbon nanofibers onto qualitative filter paper by a vacuum filtration process and subsequent electrodeposition of the interconnected MnO2 sheets onto the CNF-coated paper. The CNF/Paper serves as an active and good conductive flexible substrate for an electrode in supercapacitors. Correspondingly, the nanoporous structure by the MnO2 facilitates the effective contact range of the active material with the electrolyte, thus increasing the capacitance.
author2 Kong Ling Bing
author_facet Kong Ling Bing
Lau, Jun Jie
format Final Year Project
author Lau, Jun Jie
author_sort Lau, Jun Jie
title Fabrication and characterization of flexible-conductive nanocomposites
title_short Fabrication and characterization of flexible-conductive nanocomposites
title_full Fabrication and characterization of flexible-conductive nanocomposites
title_fullStr Fabrication and characterization of flexible-conductive nanocomposites
title_full_unstemmed Fabrication and characterization of flexible-conductive nanocomposites
title_sort fabrication and characterization of flexible-conductive nanocomposites
publishDate 2016
url http://hdl.handle.net/10356/67101
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