Electrochemical characterization of platinum based catalysts for fuel cell applications

Magister Scientiae - MSc === Fuel cells convert chemical energy from a fuel into electricity through chemical reaction with oxygen. This possesses some challenges like slow oxygen reduction reaction (ORR), overpotential, and methanol fuel cross over in a direct methanol fuel cell (DMFC). These cha...

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Main Author: Thobeka, Adonisi
Other Authors: Khotseng, Lindi
Language:en
Published: University of the Western Cape 2014
Subjects:
Online Access:http://hdl.handle.net/11394/3812
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spelling ndltd-netd.ac.za-oai-union.ndltd.org-uwc-oai-etd.uwc.ac.za-11394-38122019-02-12T04:40:32Z Electrochemical characterization of platinum based catalysts for fuel cell applications Thobeka, Adonisi Khotseng, Lindi Fuel cells Oxygen Reduction Reaction (ORR) Direct Methanol Fuel Cell (DMFC) Magister Scientiae - MSc Fuel cells convert chemical energy from a fuel into electricity through chemical reaction with oxygen. This possesses some challenges like slow oxygen reduction reaction (ORR), overpotential, and methanol fuel cross over in a direct methanol fuel cell (DMFC). These challenges cause inefficiency and use of higher amounts of the expensive platinum catalyst.Several binary catalysts with better ORR activity have been reported. In this study we investigate the best catalyst with better ORR and MOR performances and lower over-potentials for PEMFC and DMFC applications by comparing the in-house catalysts (10%Pt/C, 20%Pt/C,30%Pt15%Ru/C, 40%Pt20%Ru/C, 30%PtCo/C, 20%Pt20%Cu/C and 20%PtSn/C) with the commercial platinum based catalysts (10%Pt/C, 20%Pt/C, 20%Pt10%Ru/C, 20%PtCo/C,20%PtCu/C and 20%PtSn/C) using the cyclic voltammetry and the rotating disk electrode to determine their oxygen reduction reaction and methanol tolerance. HRTEM and XRD techniques were used to determine their particle size, arrangement and the atomic composition. It was observed that the 20%Pt/C in-house catalyst gave the best ORR activity and higher methanol oxidation current peaks compared to others catalysts followed by 20%Pt10%Ru/C commercial catalyst. The 20%PtCo/C commercial, 30%PtCo/C in-house and 20%PtSn/C in-house catalysts were found to be the most methanol tolerant catalysts making them the best catalysts for ORR in DMFC. It was observed that the ORR activity of 20%PtCo/C commercial and 30%PtCo/C inhouse catalysts were enhanced when heat treated at 350 0C. From XRD and HRTEM studies, the particle sizes were between 2.72nm to 5.02nm with little agglomeration but after the heat treatment, the particles were nicely dispersed on the carbon support. 2014-11-06T11:12:30Z 2014-11-06T11:12:30Z 2012 Thesis http://hdl.handle.net/11394/3812 en University of the Western Cape
collection NDLTD
language en
sources NDLTD
topic Fuel cells
Oxygen Reduction Reaction (ORR)
Direct Methanol Fuel Cell (DMFC)
spellingShingle Fuel cells
Oxygen Reduction Reaction (ORR)
Direct Methanol Fuel Cell (DMFC)
Thobeka, Adonisi
Electrochemical characterization of platinum based catalysts for fuel cell applications
description Magister Scientiae - MSc === Fuel cells convert chemical energy from a fuel into electricity through chemical reaction with oxygen. This possesses some challenges like slow oxygen reduction reaction (ORR), overpotential, and methanol fuel cross over in a direct methanol fuel cell (DMFC). These challenges cause inefficiency and use of higher amounts of the expensive platinum catalyst.Several binary catalysts with better ORR activity have been reported. In this study we investigate the best catalyst with better ORR and MOR performances and lower over-potentials for PEMFC and DMFC applications by comparing the in-house catalysts (10%Pt/C, 20%Pt/C,30%Pt15%Ru/C, 40%Pt20%Ru/C, 30%PtCo/C, 20%Pt20%Cu/C and 20%PtSn/C) with the commercial platinum based catalysts (10%Pt/C, 20%Pt/C, 20%Pt10%Ru/C, 20%PtCo/C,20%PtCu/C and 20%PtSn/C) using the cyclic voltammetry and the rotating disk electrode to determine their oxygen reduction reaction and methanol tolerance. HRTEM and XRD techniques were used to determine their particle size, arrangement and the atomic composition. It was observed that the 20%Pt/C in-house catalyst gave the best ORR activity and higher methanol oxidation current peaks compared to others catalysts followed by 20%Pt10%Ru/C commercial catalyst. The 20%PtCo/C commercial, 30%PtCo/C in-house and 20%PtSn/C in-house catalysts were found to be the most methanol tolerant catalysts making them the best catalysts for ORR in DMFC. It was observed that the ORR activity of 20%PtCo/C commercial and 30%PtCo/C inhouse catalysts were enhanced when heat treated at 350 0C. From XRD and HRTEM studies, the particle sizes were between 2.72nm to 5.02nm with little agglomeration but after the heat treatment, the particles were nicely dispersed on the carbon support.
author2 Khotseng, Lindi
author_facet Khotseng, Lindi
Thobeka, Adonisi
author Thobeka, Adonisi
author_sort Thobeka, Adonisi
title Electrochemical characterization of platinum based catalysts for fuel cell applications
title_short Electrochemical characterization of platinum based catalysts for fuel cell applications
title_full Electrochemical characterization of platinum based catalysts for fuel cell applications
title_fullStr Electrochemical characterization of platinum based catalysts for fuel cell applications
title_full_unstemmed Electrochemical characterization of platinum based catalysts for fuel cell applications
title_sort electrochemical characterization of platinum based catalysts for fuel cell applications
publisher University of the Western Cape
publishDate 2014
url http://hdl.handle.net/11394/3812
work_keys_str_mv AT thobekaadonisi electrochemicalcharacterizationofplatinumbasedcatalystsforfuelcellapplications
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