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dc.contributor.authorDai, J.
dc.contributor.authorZhu, Y.
dc.contributor.authorChen, Y.
dc.contributor.authorZhou, W.
dc.contributor.authorShao, Zongping
dc.date.accessioned2017-08-24T02:19:49Z
dc.date.available2017-08-24T02:19:49Z
dc.date.created2017-08-23T07:21:48Z
dc.date.issued2017
dc.identifier.citationDai, J. and Zhu, Y. and Chen, Y. and Zhou, W. and Shao, Z. 2017. Na0.86Co0.95Fe0.05O2 Layered Oxide As Highly Efficient Water Oxidation Electrocatalyst in Alkaline Media. ACS Applied Materials and Interfaces. 9 (26): pp. 21587-21592.
dc.identifier.urihttp://hdl.handle.net/20.500.11937/55638
dc.identifier.doi10.1021/acsami.7b06004
dc.description.abstract

© 2017 American Chemical Society. Electrochemical energy storage and conversion technologies, such as water-splitting devices, rechargeable metal-air batteries, and regenerative fuel cells, are promising alternatives to traditional nonrenewable energy systems. Given the sluggish oxygen evolution reaction (OER) in the above renewable-energy technologies, the development of efficient OER electrocatalysts with high performance is of great importance. Here, we demonstrate a layer-structured oxide Na 0.86 Co 0.95 Fe 0.05 O 2 (NCF0.05) as a novel electrocatalyst for efficient water oxidation in alkaline media. NCF0.05 shows enhanced performance, including lower overpotential, lower Tafel slope and better stability than the parent Na 0.86 CoO 2 (NC). Especially, the OER performance of NCF0.05 is comparable to the state-of-the-art IrO 2 catalyst. This enhanced catalytic activity of NCF0.05 may be ascribed to the unusual synergistic interplay between Fe and Co. A possible dual-metal-site mechanism was also proposed for OER on NCF0.05.

dc.publisherAmerican Chemical Society
dc.titleNa0.86Co0.95Fe0.05O2 Layered Oxide As Highly Efficient Water Oxidation Electrocatalyst in Alkaline Media
dc.typeJournal Article
dcterms.source.volume9
dcterms.source.number26
dcterms.source.startPage21587
dcterms.source.endPage21592
dcterms.source.issn1944-8244
dcterms.source.titleACS Applied Materials and Interfaces
curtin.departmentDepartment of Chemical Engineering
curtin.accessStatusFulltext not available


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