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Cited 13 time in webofscience Cited 12 time in scopus
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Bi/BiFe(oxy)hydroxide for sustainable lattice oxygen-boosted electrocatalysis at a practical high current densityopen access

Authors
Jo, SeunghwanPark, Woon BaeLee, Keon BeomChoi, HyeonggeunLee, Kug-SeungAhn, DocheonLee, Young-WooSohn, Kee-SunHong, JohnSohn, Jung Inn
Issue Date
Nov-2022
Publisher
Elsevier BV
Keywords
Oxygen evolution reaction; Lattice oxygen mechanism; Bismuth -iron hybridization; Practically high current operation; DFT calculation
Citation
Applied Catalysis B: Environment and Energy, v.317, pp 1 - 9
Pages
9
Indexed
SCIE
SCOPUS
Journal Title
Applied Catalysis B: Environment and Energy
Volume
317
Start Page
1
End Page
9
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/2202
DOI
10.1016/j.apcatb.2022.121685
ISSN
0926-3373
1873-3883
Abstract
Lattice oxygen mechanism (LOM) is a promising pathway to circumvent sluggish oxygen evolution reaction (OER) for efficient water electrolysis. The iron (Fe)-based oxyhydroxide materials for OER catalysts by LOM is well known. However, dissolution of Fe atoms and promoting participation level of lattice oxygen at a practical and extremely high current density (> 1000 mA cm(-2) for oxygen generation) should be resolved for high performance and long-term stability. Here, controlling the reduction of synthetic intermediates allowed amorphous BiFe (oxy)hydroxides with secondary bismuth (Bi) metal (BM/BiFeOxHy) heterogeneous structures with abundant lattice vacancies to be obtained. The BM/BiFeOxHy electrode exhibited low overpotential of 232 and 359 mV at a current density of 10 and 1000 mA cm-2, respectively. Moreover, the balanced hybridization of Bi/Fe-O was demonstrated to result in long-term catalytic stability without the dissolution of Fe atoms up to 1000 h at the extremely high current density of 1000 mA cm-2 with negligible degradation. We further showed that the excellent performance of the newly proposed BM/BiFeOxHy electrocatalysts is attributed to the utilization of Fe/ Bi-O hybridization, the induced amorphous structure, and increased lattice vacancies, which are systematically demonstrated by the electrochemical and physicochemical analysis and theoretical density functional theory (DFT) calculation.
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