First-principles simulations of electrocatalytic environments

Author(s)Giles, Stephen Arlow
Date Accessioned2018-12-05T15:14:53Z
Date Available2018-12-05T15:14:53Z
Publication Date2018
SWORD Update2018-10-17T16:04:40Z
AbstractWithin the overarching goal of increasing energy sustainability and decreasing emissions, the hydrogen fuel cell holds a key place. The proton exchange membrane fuel cell (PEMFC) has been commercialized in the Toyota Mirai. The PEMFC, however, uses a Pt catalyst and is economically unaffordable by many consumers. ☐ Hydroxide exchange membrane fuel cells (HEMFC) enable the use of a broad variety of non-precious metal catalysts. However, a drawback to commercialization of HEMFC technology is the decreased rate of hydrogen oxidation reaction (HOR) in base. Herein, computational studies are performed to predict active catalysts for basic environments, as well as to elucidate the cause of the decreased rate of HOR. ☐ Molecular simulations are performed for a variety of nanoparticles supported on graphene and graphene doped with nitrogen or boron. The presence of either nitrogen or boron leads to a greater nanoparticle-support interaction, and influences nanoparticle properties. The development of a predictive adsorption model, size effects, and the impact on HOR activity are discussed. ☐ To explain the dependence of the HOR kinetics on pH, a new thermodynamic descriptor for HOR, the apparent Gibbs free energy of hydrogen adsorption, is introduced. This descriptor, which accounts for pH-dependent water adsorption, is computed and shown to be consistent with measured HOR kinetics. ☐ Future directions include direct computation of HOR free energy barriers, as well as the dynamic simulation of the electrode interface. Experimentally, controlling nanoparticle size and tuning water adsorption should be points of emphasis.en_US
AdvisorVlachos, Dionisios G.
AdvisorYan, Yushan
DegreePh.D.
DepartmentUniversity of Delaware, Department of Chemical and Biomolecular Engineering
DOIhttps://doi.org/10.58088/50e6-s713
Unique Identifier1077769371
URLhttp://udspace.udel.edu/handle/19716/23965
Languageen
PublisherUniversity of Delawareen_US
URIhttps://search.proquest.com/docview/2130950486?accountid=10457
KeywordsApplied sciencesen_US
KeywordsDensity functional theoryen_US
KeywordsElectrochemistryen_US
KeywordsHydrogen oxidationen_US
KeywordsNanoparticleen_US
KeywordsSupport effectsen_US
TitleFirst-principles simulations of electrocatalytic environmentsen_US
TypeThesisen_US
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