Optimization of catalyst composition in La0.75Ca0.25Cr0.5Mn0.5MxO3 for enhanced hydrogen production via methane cracking

This study dives into the use of solid oxide fuel cell’s B-site doped La0.75Ca0.25Cr0.5Mn0.5MxO3 (LCCM, M = Fe, Co, Ni) anode material as a catalyst for methane cracking. From the array of doped catalysts, we will determine the optimal catalyst based on its carbon yield. The selection of LCCM is d...

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Main Author: Khan, Muhammad Hassan
Other Authors: Chan Siew Hwa
Format: Final Year Project
Language:English
Published: Nanyang Technological University 2024
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Online Access:https://hdl.handle.net/10356/176188
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Institution: Nanyang Technological University
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spelling sg-ntu-dr.10356-1761882024-05-18T16:52:33Z Optimization of catalyst composition in La0.75Ca0.25Cr0.5Mn0.5MxO3 for enhanced hydrogen production via methane cracking Khan, Muhammad Hassan Chan Siew Hwa School of Mechanical and Aerospace Engineering MSHCHAN@ntu.edu.sg Engineering Catalyst This study dives into the use of solid oxide fuel cell’s B-site doped La0.75Ca0.25Cr0.5Mn0.5MxO3 (LCCM, M = Fe, Co, Ni) anode material as a catalyst for methane cracking. From the array of doped catalysts, we will determine the optimal catalyst based on its carbon yield. The selection of LCCM is due to the stability in a redox atmosphere as well as the low carbon deposition on the LCCM anode when methane is used as a fuel for solid oxide fuel cell. It is expected that LCCM will serve as a very effective catalyst support, capable of efficiently diluting the catalyst to lower the degree of sintering during the catalyst preparation process, thereby enhancing the activity of the effective catalyst. In this study, the doped LCCM will be modified and be used as a self-supported catalyst for methane cracking to test its catalytic performance by optimizing catalyst preparation parameters. The transition metal cobalt, iron and nickel were doped into the B-site of LCCM to enhance the LCCM catalytic performance. The LCCM catalyst was produced using a modified solid-state reaction method, specifically the aqueous gel-casting method. The research results indicate that the catalytic activities of the 100Ni-LCCM is ideal in terms of the carbon yield obtained in the experiment. The carbon yield from XRD analysis, weight loss rate under H2 atmosphere and carbon yield from methane cracking proves to show that the 100Ni-LCCM is the ideal candidate for methane cracking. Bachelor's degree 2024-05-14T02:51:34Z 2024-05-14T02:51:34Z 2024 Final Year Project (FYP) Khan, M. H. (2024). Optimization of catalyst composition in La0.75Ca0.25Cr0.5Mn0.5MxO3 for enhanced hydrogen production via methane cracking. Final Year Project (FYP), Nanyang Technological University, Singapore. https://hdl.handle.net/10356/176188 https://hdl.handle.net/10356/176188 en application/pdf Nanyang Technological University
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering
Catalyst
spellingShingle Engineering
Catalyst
Khan, Muhammad Hassan
Optimization of catalyst composition in La0.75Ca0.25Cr0.5Mn0.5MxO3 for enhanced hydrogen production via methane cracking
description This study dives into the use of solid oxide fuel cell’s B-site doped La0.75Ca0.25Cr0.5Mn0.5MxO3 (LCCM, M = Fe, Co, Ni) anode material as a catalyst for methane cracking. From the array of doped catalysts, we will determine the optimal catalyst based on its carbon yield. The selection of LCCM is due to the stability in a redox atmosphere as well as the low carbon deposition on the LCCM anode when methane is used as a fuel for solid oxide fuel cell. It is expected that LCCM will serve as a very effective catalyst support, capable of efficiently diluting the catalyst to lower the degree of sintering during the catalyst preparation process, thereby enhancing the activity of the effective catalyst. In this study, the doped LCCM will be modified and be used as a self-supported catalyst for methane cracking to test its catalytic performance by optimizing catalyst preparation parameters. The transition metal cobalt, iron and nickel were doped into the B-site of LCCM to enhance the LCCM catalytic performance. The LCCM catalyst was produced using a modified solid-state reaction method, specifically the aqueous gel-casting method. The research results indicate that the catalytic activities of the 100Ni-LCCM is ideal in terms of the carbon yield obtained in the experiment. The carbon yield from XRD analysis, weight loss rate under H2 atmosphere and carbon yield from methane cracking proves to show that the 100Ni-LCCM is the ideal candidate for methane cracking.
author2 Chan Siew Hwa
author_facet Chan Siew Hwa
Khan, Muhammad Hassan
format Final Year Project
author Khan, Muhammad Hassan
author_sort Khan, Muhammad Hassan
title Optimization of catalyst composition in La0.75Ca0.25Cr0.5Mn0.5MxO3 for enhanced hydrogen production via methane cracking
title_short Optimization of catalyst composition in La0.75Ca0.25Cr0.5Mn0.5MxO3 for enhanced hydrogen production via methane cracking
title_full Optimization of catalyst composition in La0.75Ca0.25Cr0.5Mn0.5MxO3 for enhanced hydrogen production via methane cracking
title_fullStr Optimization of catalyst composition in La0.75Ca0.25Cr0.5Mn0.5MxO3 for enhanced hydrogen production via methane cracking
title_full_unstemmed Optimization of catalyst composition in La0.75Ca0.25Cr0.5Mn0.5MxO3 for enhanced hydrogen production via methane cracking
title_sort optimization of catalyst composition in la0.75ca0.25cr0.5mn0.5mxo3 for enhanced hydrogen production via methane cracking
publisher Nanyang Technological University
publishDate 2024
url https://hdl.handle.net/10356/176188
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