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dc.contributor.authorZhou, Y.
dc.contributor.authorNeyerlin, K.
dc.contributor.authorOlson, T.
dc.contributor.authorPylypenko, S.
dc.contributor.authorBult, J.
dc.contributor.authorDinh, H.
dc.contributor.authorGennett, T.
dc.contributor.authorShao, Zongping
dc.contributor.authorO'Hayre, R.
dc.date.accessioned2017-01-30T13:26:44Z
dc.date.available2017-01-30T13:26:44Z
dc.date.created2016-09-12T08:36:52Z
dc.date.issued2010
dc.identifier.citationZhou, Y. and Neyerlin, K. and Olson, T. and Pylypenko, S. and Bult, J. and Dinh, H. and Gennett, T. et al. 2010. Enhancement of Pt and Pt-alloy fuel cell catalyst activity and durability via nitrogen-modified carbon supports. Energy and Environmental Science. 3 (10): pp. 1437-1446.
dc.identifier.urihttp://hdl.handle.net/20.500.11937/31660
dc.identifier.doi10.1039/c003710a
dc.description.abstract

Insufficient catalytic activity and durability are key barriers to the commercial deployment of low temperature polymer electrolyte membrane (PEM) and direct-methanol fuel cells (DMFCs). Recent observations suggest that carbon-based catalyst support materials can be systematically doped with nitrogen to create strong, beneficial catalyst-support interactions which substantially enhance catalyst activity and stability. Data suggest that nitrogen functional groups introduced into a carbon support appear to influence at least three aspects of the catalyst/support system: 1) modified nucleation and growth kinetics during catalyst nanoparticle deposition, which results in smaller catalyst particle size and increased catalyst particle dispersion, 2) increased support/catalyst chemical binding (or "tethering"), which results in enhanced durability, and 3) catalyst nanoparticle electronic structure modification, which enhances intrinsic catalytic activity. This review highlights recent studies that provide broad-based evidence for these nitrogen-modification effects as well as insights into the underlying fundamental mechanisms. © 2010 The Royal Society of Chemistry.

dc.publisherRoyal Society of Chemistry
dc.titleEnhancement of Pt and Pt-alloy fuel cell catalyst activity and durability via nitrogen-modified carbon supports
dc.typeJournal Article
dcterms.source.volume3
dcterms.source.number10
dcterms.source.startPage1437
dcterms.source.endPage1446
dcterms.source.issn1754-5692
dcterms.source.titleEnergy and Environmental Science
curtin.departmentDepartment of Chemical Engineering
curtin.accessStatusFulltext not available


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