Development of iron-based catalyst for the production of hydrogen by thermocatalytic decomposition of methane

Iron-based catalysts were synthesized using the precipitation/ co-precipitation method for the thermocatalytic decomposition of methane to hydrogen. The metal source, precipitator, solvent and surfactant were varied to study their effects on the structural and catalytic performance of the catalysts....

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Main Author: Tee, Huey Yi.
Other Authors: Lua Aik Chong
Format: Final Year Project
Language:English
Published: 2012
Subjects:
Online Access:http://hdl.handle.net/10356/50373
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-503732023-03-04T19:12:36Z Development of iron-based catalyst for the production of hydrogen by thermocatalytic decomposition of methane Tee, Huey Yi. Lua Aik Chong School of Mechanical and Aerospace Engineering DRNTU::Engineering::Mechanical engineering Iron-based catalysts were synthesized using the precipitation/ co-precipitation method for the thermocatalytic decomposition of methane to hydrogen. The metal source, precipitator, solvent and surfactant were varied to study their effects on the structural and catalytic performance of the catalysts. TEM, SEM and XRD were used to characterize the catalyst structures and by varying the catalyst synthesis conditions, iron-based oxides with various morphologies, such as diamond, rod and sphere-like structures, could be obtained.Introduction of methane during the initial reduction of the iron oxides played a critical role on yielding excellent catalytic results. TEM micrographs showed that two different carbon materials, carbon fibres and graphene layers were present during the catalytic decomposition process. The best catalytic activity was achieved by the catalyst which was prepared from iron nitrate, ammonia and water. Stepped-programmed temperature tests were employed in this study to assess the catalytic performance of the catalyst in the most efficient and effective way to obtain their optimized operating temperature and maximum conversion rate. Promising catalysts identified in the stepped-programmed temperature tests were again tested at fixed temperature to optimize their conversion rate and observe their stability. Bachelor of Engineering (Mechanical Engineering) 2012-06-01T06:36:05Z 2012-06-01T06:36:05Z 2012 2012 Final Year Project (FYP) http://hdl.handle.net/10356/50373 en Nanyang Technological University 61 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::Mechanical engineering
spellingShingle DRNTU::Engineering::Mechanical engineering
Tee, Huey Yi.
Development of iron-based catalyst for the production of hydrogen by thermocatalytic decomposition of methane
description Iron-based catalysts were synthesized using the precipitation/ co-precipitation method for the thermocatalytic decomposition of methane to hydrogen. The metal source, precipitator, solvent and surfactant were varied to study their effects on the structural and catalytic performance of the catalysts. TEM, SEM and XRD were used to characterize the catalyst structures and by varying the catalyst synthesis conditions, iron-based oxides with various morphologies, such as diamond, rod and sphere-like structures, could be obtained.Introduction of methane during the initial reduction of the iron oxides played a critical role on yielding excellent catalytic results. TEM micrographs showed that two different carbon materials, carbon fibres and graphene layers were present during the catalytic decomposition process. The best catalytic activity was achieved by the catalyst which was prepared from iron nitrate, ammonia and water. Stepped-programmed temperature tests were employed in this study to assess the catalytic performance of the catalyst in the most efficient and effective way to obtain their optimized operating temperature and maximum conversion rate. Promising catalysts identified in the stepped-programmed temperature tests were again tested at fixed temperature to optimize their conversion rate and observe their stability.
author2 Lua Aik Chong
author_facet Lua Aik Chong
Tee, Huey Yi.
format Final Year Project
author Tee, Huey Yi.
author_sort Tee, Huey Yi.
title Development of iron-based catalyst for the production of hydrogen by thermocatalytic decomposition of methane
title_short Development of iron-based catalyst for the production of hydrogen by thermocatalytic decomposition of methane
title_full Development of iron-based catalyst for the production of hydrogen by thermocatalytic decomposition of methane
title_fullStr Development of iron-based catalyst for the production of hydrogen by thermocatalytic decomposition of methane
title_full_unstemmed Development of iron-based catalyst for the production of hydrogen by thermocatalytic decomposition of methane
title_sort development of iron-based catalyst for the production of hydrogen by thermocatalytic decomposition of methane
publishDate 2012
url http://hdl.handle.net/10356/50373
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