Title:
Mass Transport and Durability of Proton-Exchange-Membrane Fuel Cell Electrodes

dc.contributor.advisor Fuller, Thomas F.
dc.contributor.author Fang, Zhengyuan Jung
dc.contributor.committeeMember Kohl, Paul A
dc.contributor.committeeMember Liu, Nian
dc.contributor.committeeMember Ludovice, Peter J
dc.contributor.committeeMember Alamgir, Faisal
dc.contributor.department Chemical and Biomolecular Engineering
dc.date.accessioned 2021-01-11T17:10:20Z
dc.date.available 2021-01-11T17:10:20Z
dc.date.created 2020-12
dc.date.issued 2020-11-03
dc.date.submitted December 2020
dc.date.updated 2021-01-11T17:10:20Z
dc.description.abstract Large transport resistances at high current densities hinder the proton-exchange-membrane fuel cells from reaching performance-cost-durability targets set by the U.S. Department of Energy (DOE). In this dissertation, the effect of carbon corrosion on the electrode wettability and the effect of carbon surface functionalization on the fuel cell performance and durability are investigated. In the wettability study, commercial membrane electrode assemblies were employed and the surface roughness and porosity were fitted to surface texture models. It was found that cathode sustained its wettability after up to 35 wt% of carbon support loss, at which the cell performance dropped below the DOE’s durability-performance target. In the surface functionalization study, three schemes were investigated for either grafting positively charged nitrogen surface groups or negatively charged sulfonate groups for three types of carbon supports. In full-cell tests, improvements over high current densities were observed in samples reacted with para-phenylenediamine or ammonia, whereas the performance decreased after functionalization with sulfonate groups. The improvement at high current densities exceeded the mass-activity improvement and was attributed to reduced mass-transfer polarizations. Furthermore, a statistical approach was explored to examine the changes in ionomer surface coverage and ionomer coverage was found to increase after functionalization with nitrogen containing group. In addition, accelerated stress tests were performed to study the durability. Lastly, a modified agglomerate model was developed to study the effect of ionomer coverage on the electrode mass-transport resistance. The major contributions of this dissertation include understanding the role of electrode wettability in durability studies, providing high-performing carbon supports that can be incorporated to the state-of-the-art electrocatalysts, and exploring a novel approach to calculate nano-scale ionomer coverage on the electrocatalysts.
dc.description.degree Ph.D.
dc.format.mimetype application/pdf
dc.identifier.uri http://hdl.handle.net/1853/64129
dc.language.iso en_US
dc.publisher Georgia Institute of Technology
dc.subject PEM fuel cell
dc.subject fuel cell durability
dc.title Mass Transport and Durability of Proton-Exchange-Membrane Fuel Cell Electrodes
dc.type Text
dc.type.genre Dissertation
dspace.entity.type Publication
local.contributor.advisor Fuller, Thomas F.
local.contributor.corporatename School of Chemical and Biomolecular Engineering
local.contributor.corporatename College of Engineering
relation.isAdvisorOfPublication 1bdc8885-6fad-4aa0-8a5e-b5a6d65c5532
relation.isOrgUnitOfPublication 6cfa2dc6-c5bf-4f6b-99a2-57105d8f7a6f
relation.isOrgUnitOfPublication 7c022d60-21d5-497c-b552-95e489a06569
thesis.degree.level Doctoral
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