Studies of carbon monoxide activation and poison on metallic and enzymatic sites: The new ATR-IR spectroelectrochemical approach

<p>Direct liquid fuel cells (DLFCs) offer a great opportunity to replace traditional fuel combustion with cleaner localised energy production. One of the biggest challenges for developing a commercial DLFC device is the production of CO during fuel oxidation. CO is not only one of the most com...

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Main Author: Chang, G
Other Authors: Vincent, K
Format: Thesis
Published: 2016
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author Chang, G
author2 Vincent, K
author_facet Vincent, K
Chang, G
author_sort Chang, G
collection OXFORD
description <p>Direct liquid fuel cells (DLFCs) offer a great opportunity to replace traditional fuel combustion with cleaner localised energy production. One of the biggest challenges for developing a commercial DLFC device is the production of CO during fuel oxidation. CO is not only one of the most common intermediates of hydrocarbon fuels oxidation but also a poison of most metal catalysts. <em>In situ</em> infrared (IR) spectroelectrochemical (SEC) techniques have been intensively used to understand the reaction mechanisms for oxidation of different fuels and to study the presence and activation of CO on different bulk metal electrodes. However, there have been few studies of supported nanocatalysts during electrocatalytic turnover relevant to realistic fuel cell devices. In this Thesis, a new attenuated total reflectance IR (ATR-IR) SEC approach is used to study the electrocatalytic oxidation of formic acid and methanol on a commercial carbon supported Pd nanocatalyst (Premetek, USA, 60% Pd / XC-72).</p> <p>The results from ATR-IR SEC studies of formic acid oxidation on the Pd nanoparticles show CO poisoning, and reveal that this is derived from trace organic impurities present in reagent grade formic acid, rather than from the dehydration of formic acid itself.</p> <p>The supported Pd catalyst shows very different activities for methanol oxidation in different pH conditions. In acidic conditions, the catalyst is strongly poisoned by adsorbed CO and shows very low activity towards methanol oxidation. On the other hand, in alkaline conditions, only very weak IR signal from adsorbed CO can be detected and the activity of methanol oxidation is much higher compared to the acidic conditions. The detection of strong IR signals from formate suggests that formate acts as a significant reactive intermediate.</p> <p>In the final part of this Thesis, the possibility of developing a more efficient electrocatalytic system to reduce greenhouse gas CO<sub>2</sub> to hydrocarbon feedstocks is demonstrated by using a composite catalyst which comprises an enzyme to reduce CO<sub>2</sub> to CO, and copper nanoparticles for further reduction of CO.</p> <p>Overall this Thesis provides insight into the activation of CO at metal sites during electrocatalytic reactions which are relevant to energy technologies. </p>
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spelling oxford-uuid:86b5886a-2e15-4279-b5c6-62f522beda002022-03-26T22:05:43ZStudies of carbon monoxide activation and poison on metallic and enzymatic sites: The new ATR-IR spectroelectrochemical approachThesishttp://purl.org/coar/resource_type/c_db06uuid:86b5886a-2e15-4279-b5c6-62f522beda00ORA Deposit2016Chang, GVincent, K<p>Direct liquid fuel cells (DLFCs) offer a great opportunity to replace traditional fuel combustion with cleaner localised energy production. One of the biggest challenges for developing a commercial DLFC device is the production of CO during fuel oxidation. CO is not only one of the most common intermediates of hydrocarbon fuels oxidation but also a poison of most metal catalysts. <em>In situ</em> infrared (IR) spectroelectrochemical (SEC) techniques have been intensively used to understand the reaction mechanisms for oxidation of different fuels and to study the presence and activation of CO on different bulk metal electrodes. However, there have been few studies of supported nanocatalysts during electrocatalytic turnover relevant to realistic fuel cell devices. In this Thesis, a new attenuated total reflectance IR (ATR-IR) SEC approach is used to study the electrocatalytic oxidation of formic acid and methanol on a commercial carbon supported Pd nanocatalyst (Premetek, USA, 60% Pd / XC-72).</p> <p>The results from ATR-IR SEC studies of formic acid oxidation on the Pd nanoparticles show CO poisoning, and reveal that this is derived from trace organic impurities present in reagent grade formic acid, rather than from the dehydration of formic acid itself.</p> <p>The supported Pd catalyst shows very different activities for methanol oxidation in different pH conditions. In acidic conditions, the catalyst is strongly poisoned by adsorbed CO and shows very low activity towards methanol oxidation. On the other hand, in alkaline conditions, only very weak IR signal from adsorbed CO can be detected and the activity of methanol oxidation is much higher compared to the acidic conditions. The detection of strong IR signals from formate suggests that formate acts as a significant reactive intermediate.</p> <p>In the final part of this Thesis, the possibility of developing a more efficient electrocatalytic system to reduce greenhouse gas CO<sub>2</sub> to hydrocarbon feedstocks is demonstrated by using a composite catalyst which comprises an enzyme to reduce CO<sub>2</sub> to CO, and copper nanoparticles for further reduction of CO.</p> <p>Overall this Thesis provides insight into the activation of CO at metal sites during electrocatalytic reactions which are relevant to energy technologies. </p>
spellingShingle Chang, G
Studies of carbon monoxide activation and poison on metallic and enzymatic sites: The new ATR-IR spectroelectrochemical approach
title Studies of carbon monoxide activation and poison on metallic and enzymatic sites: The new ATR-IR spectroelectrochemical approach
title_full Studies of carbon monoxide activation and poison on metallic and enzymatic sites: The new ATR-IR spectroelectrochemical approach
title_fullStr Studies of carbon monoxide activation and poison on metallic and enzymatic sites: The new ATR-IR spectroelectrochemical approach
title_full_unstemmed Studies of carbon monoxide activation and poison on metallic and enzymatic sites: The new ATR-IR spectroelectrochemical approach
title_short Studies of carbon monoxide activation and poison on metallic and enzymatic sites: The new ATR-IR spectroelectrochemical approach
title_sort studies of carbon monoxide activation and poison on metallic and enzymatic sites the new atr ir spectroelectrochemical approach
work_keys_str_mv AT changg studiesofcarbonmonoxideactivationandpoisononmetallicandenzymaticsitesthenewatrirspectroelectrochemicalapproach