Mechanism of oxygen reduction reaction on transition metal oxide catalysts for high temperature fuel cells

Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Materials Science and Engineering, 2008.

書誌詳細
第一著者: La O', Gerardo Jose Cordova
その他の著者: Yang Shao-Horn and Harry L. Tuller.
フォーマット: 学位論文
言語:eng
出版事項: Massachusetts Institute of Technology 2009
主題:
オンライン・アクセス:http://hdl.handle.net/1721.1/44683
_version_ 1826191787650187264
author La O', Gerardo Jose Cordova
author2 Yang Shao-Horn and Harry L. Tuller.
author_facet Yang Shao-Horn and Harry L. Tuller.
La O', Gerardo Jose Cordova
author_sort La O', Gerardo Jose Cordova
collection MIT
description Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Materials Science and Engineering, 2008.
first_indexed 2024-09-23T09:01:16Z
format Thesis
id mit-1721.1/44683
institution Massachusetts Institute of Technology
language eng
last_indexed 2024-09-23T09:01:16Z
publishDate 2009
publisher Massachusetts Institute of Technology
record_format dspace
spelling mit-1721.1/446832019-04-10T11:13:44Z Mechanism of oxygen reduction reaction on transition metal oxide catalysts for high temperature fuel cells La O', Gerardo Jose Cordova Yang Shao-Horn and Harry L. Tuller. Massachusetts Institute of Technology. Dept. of Materials Science and Engineering. Massachusetts Institute of Technology. Dept. of Materials Science and Engineering. Materials Science and Engineering. Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Materials Science and Engineering, 2008. Includes bibliographical references (p. 157-162). The solid oxide fuel cell (SOFC) with its high energy conversion efficiency, low emissions, silent operation and its ability to utilize commercial fuels has the potential to create a large impact on the energy landscape. Although SOFCs do not require noble metal catalysts, it has the disadvantage of having to operate at elevated temperatures (>800°C) due to the poor catalytic activity of the oxygen reducing cathode. This thesis research is focused on identifying the fundamental reaction mechanisms and pathways for oxygen reduction reaction (ORR) in transition metal oxide cathodes to enable lower operating temperature and improve device performance. The approach used here involves dense and thin-film microelectrodes of Lao.sSr0.2M03-d (M = Mn and Fe) supported on thin film 8YSZ electrolyte that was fabricated via microfabrication/photolithography techniques. These microelectrodes were then probed mainly via electrochemical impedance spectroscopy (EIS) under varying temperature, oxygen partial pressure, microelectrode size/thickness, and applied polarization potential to determine the rate-limiting step(s) during ORR. For La0.8Sr0.2MnO3-d (LSM), at least four reaction or transport process have been identified from EIS; (i) ion conduction in 8YSZ, (ii) possible surface diffusion on LSM, (iii) surface exchange reaction on LSM and (iv) TPB/bulk charge transfer on LSM. The rate-limiting step and the relative contribution of ORR current from the bulk and three-phase boundary pathways were found to vary with temperature. This was quantified by correlating microelectrode geometry to the impedance. For Lao.sSr0.2FeO3-d (LSF), overall impedance was found to be at least one to two of magnitude smaller than LSM. (cont.) Three reactions or transport processes were observed that were attributed to (i) ion conduction in 8YSZ, (ii) possible surface diffusion on LSF and (iii) oxygen surface exchange reaction on LSF. The bulk pathway was found to be dominating down to 570°C and surface exchange as the rate-limiting step. Studies to probe the surface reaction mechanisms showed that oxygen exchange coefficients (kchem) were highly dependent on material electronic properties rather than oxygen vacancy contents. Using polarization potentials, kchem was found to be increased by up to 1 order of magnitude due variations in lanthanum elemental contents on the microelectrode surface. Design principles for thin-film based cathodes are proposed to enhance performance of SOFCs operating at <700°C. For dense and thin-film electrodes, enhancement of surface exchange rates via physical or chemical modifications is critical to enhancing surface catalytic activity. Use of internal microstructure with large grain boundary fractions to improve bulk oxygen transport is important, especially in LSM, for reducing ion transport losses. by Gerardo Jose Cordova la O'. Ph.D. 2009-03-16T19:28:48Z 2009-03-16T19:28:48Z 2008 2008 Thesis http://hdl.handle.net/1721.1/44683 275165424 eng M.I.T. theses are protected by copyright. They may be viewed from this source for any purpose, but reproduction or distribution in any format is prohibited without written permission. See provided URL for inquiries about permission. http://dspace.mit.edu/handle/1721.1/7582 162 p. application/pdf Massachusetts Institute of Technology
spellingShingle Materials Science and Engineering.
La O', Gerardo Jose Cordova
Mechanism of oxygen reduction reaction on transition metal oxide catalysts for high temperature fuel cells
title Mechanism of oxygen reduction reaction on transition metal oxide catalysts for high temperature fuel cells
title_full Mechanism of oxygen reduction reaction on transition metal oxide catalysts for high temperature fuel cells
title_fullStr Mechanism of oxygen reduction reaction on transition metal oxide catalysts for high temperature fuel cells
title_full_unstemmed Mechanism of oxygen reduction reaction on transition metal oxide catalysts for high temperature fuel cells
title_short Mechanism of oxygen reduction reaction on transition metal oxide catalysts for high temperature fuel cells
title_sort mechanism of oxygen reduction reaction on transition metal oxide catalysts for high temperature fuel cells
topic Materials Science and Engineering.
url http://hdl.handle.net/1721.1/44683
work_keys_str_mv AT laogerardojosecordova mechanismofoxygenreductionreactionontransitionmetaloxidecatalystsforhightemperaturefuelcells