A non-precious metal hydrogen catalyst in a commercial polymer electrolyte membrane electrolyser

We demonstrate the translation of a low-cost, non-precious metal cobalt phosphide (CoP) catalyst from 1 cm 2 lab-scale experiments to a commercial-scale 86 cm 2 polymer electrolyte membrane (PEM) electrolyser. A two-step bulk synthesis was adopted to produce CoP on a high-surface-area carbon support...

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Veröffentlicht in:Nature nanotechnology 2019-11, Vol.14 (11), p.1071-1074
Hauptverfasser: King, Laurie A., Hubert, McKenzie A., Capuano, Christopher, Manco, Judith, Danilovic, Nemanja, Valle, Eduardo, Hellstern, Thomas R., Ayers, Katherine, Jaramillo, Thomas F.
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Sprache:eng
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Zusammenfassung:We demonstrate the translation of a low-cost, non-precious metal cobalt phosphide (CoP) catalyst from 1 cm 2 lab-scale experiments to a commercial-scale 86 cm 2 polymer electrolyte membrane (PEM) electrolyser. A two-step bulk synthesis was adopted to produce CoP on a high-surface-area carbon support that was readily integrated into an industrial PEM electrolyser fabrication process. The performance of the CoP was compared head to head with a platinum-based PEM under the same operating conditions (400 psi, 50 °C). CoP was found to be active and stable, operating at 1.86 A cm −2 for >1,700 h of continuous hydrogen production while providing substantial material cost savings relative to platinum. This work illustrates a potential pathway for non-precious hydrogen evolution catalysts developed in past decades to translate to commercial applications. A non-precious metal cobalt phosphide hydrogen evolution catalyst is found to be active and durable in a commercial-scale polymer electrolyte membrane electrolyser.
ISSN:1748-3387
1748-3395
DOI:10.1038/s41565-019-0550-7