The Priority and Challenge of High-Power Performance of Low-Platinum Proton-Exchange Membrane Fuel Cells
Приоритет и проблемы высокомощностных характеристик низкоплатиновых топливных элементов с протонообменной мембраной
2016-03-10
SCID: 54.1/5t55x7qy
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Pt dispersioncathode platinum loadinghigh-current density performance (>1 A/cm^2)ionomer–Pt interactionlow-platinum proton-exchange membrane fuel cells
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Abstract (AI)
Substantial progress has been made in reducing proton-exchange membrane fuel cell (PEMFC) cathode platinum loadings from 0.4-0.8 mgPt/cm(2) to about 0.1 mgPt/cm(2). However, at this level of cathode Pt loading, large performance loss is observed at high-current density (>1 A/cm(2)), preventing a reduction in the overall stack cost. This next developmental step is being limited by the presence of a resistance term exhibited at these lower Pt loadings and apparently due to a phenomenon at or near the catalyst surface. This issue can be addressed through the design of catalysts with high and stable Pt dispersion as well as through development and implementation of ionomers designed to interact with Pt in a way that does not constrain oxygen reduction reaction rates. Extrapolating from progress made in past decades, we are optimistic that the concerted efforts of materials and electrode designers can resolve this issue, thus enabling a large step toward fuel cell vehicles that are affordable for the mass market.
Key Findings
1
A resistance term appearing at low Pt loadings, likely at or near the catalyst surface, limits high-current performance.
2
At ~0.1 mgPt/cm2 cathode loading, large performance loss occurs at high current density (>1 A/cm2).
3
Cathode Pt loadings in PEMFCs have been reduced from 0.4–0.8 mgPt/cm2 to about 0.1 mgPt/cm2.
4
Improved catalysts with high and stable Pt dispersion can address the high-current-density performance loss.
5
Ionomers that interact with Pt without constraining oxygen reduction reaction rates are needed to mitigate the resistance.
6
Resolving these materials and electrode design issues could enable a major cost-reducing step toward affordable fuel cell vehicles.
Research Object
Low-platinum cathode of proton-exchange membrane fuel cells (PEMFCs) with ~0.1 mgPt/cm2 loading
Research Subject
High-current-density (>1 A/cm2) performance loss mechanisms associated with resistance near the catalyst surface, and strategies (catalyst Pt dispersion and ionomer–Pt interactions) to restore high-power performance
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2016-03-10
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