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Cited 35 time in webofscience Cited 36 time in scopus
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Experimental and Theoretical Insights into the Borohydride-Based Reduction-Induced Metal Interdiffusion in Fe-Oxide@NiCo2O4 for Enhanced Oxygen Evolutionopen access

Authors
Jo, YongcheolCho, SangeunSeo, JiwooAhmed, Abu Talha AqueelLee, Chi HoSeok, Jun HoHou, BoPatil, Supriya A.Park, YoungsinShrestha, Nabeen K.Lee, Sang UckKim, HyungsangIm, Hyunsik
Issue Date
17-Nov-2021
Publisher
AMER CHEMICAL SOC
Keywords
bilayered Fe3O4/NiCo2O4; chemical reduction; metal interdiffusion; electrocatalytic water splitting; oxygen evolution reaction (OER)
Citation
ACS APPLIED MATERIALS & INTERFACES, v.13, no.45, pp 53725 - 53735
Pages
11
Indexed
SCIE
SCOPUS
Journal Title
ACS APPLIED MATERIALS & INTERFACES
Volume
13
Number
45
Start Page
53725
End Page
53735
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/4161
DOI
10.1021/acsami.1c13694
ISSN
1944-8244
1944-8252
Abstract
The oxygen evolution reaction (OER) plays a key role in determining the performance of overall water splitting, while a core technological consideration is the development of cost-effective, efficient, and durable catalysts. Here, we demonstrate a robust reduced Fe-oxide@NiCo2O4 bilayered non-precious-metal oxide composite as a highly efficient OER catalyst in an alkaline medium. A bilayered oxide composite film with an interconnected nanoflake morphology (Fe2O3@NiCo2O4) is reduced in an aqueous NaBH4 solution, which results in a mosslike Fe3O4@NiCo2O4 (reduced Fe-oxide@NiCo2O4; rFNCO) nanostructured film with an enhanced electrochemical surface area. The rFNCO film demonstrates an outstanding OER activity with an extraordinary low overpotential of 189 mV at 10 mA cm(-2) (246 mV at 100 mA cm(-2)) and a remarkably small Tafel slope of 32 mV dec(-1). The film also shows excellent durability for more than 50 h of continuous operation, even at 100 mA cm(-2). Furthermore, density functional theory calculations suggest that the unintentionally in situ doped Ni during the reduction reaction possibly improves the OER performance of the rFNCO catalyst shifting d-band centers of both Fe and Ni active sites.
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College of Natural Science > Department of Physics > 1. Journal Articles
College of Advanced Convergence Engineering > Division of System Semiconductor > 1. Journal Articles

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