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Rational Design of a Stable Fe-rich Ni-Fe Layered Double Hydroxide for the Industrially Relevant Dynamic Operation of Alkaline Water Electrolyersopen access

Authors
Mehdi, MuhammadAn, Byeong-SeonKim, HaesolLee, SechanLee, ChangsooSeo, MyeongminNoh, Min WookCho, Won-ChulKim, Chang-HeeChoi, Chang HyuckKim, Byung-HyunKim, MinJoongCho, Hyun-Seok
Issue Date
Jul-2023
Publisher
Wiley-VCH Verlag
Keywords
alkaline water electrolysis; dynamic operation stability; Ni-Fe layered double hydroxide; oxygen corrosion method; oxygen evolution reaction
Citation
Advanced Energy Materials, v.13, no.25, pp 1 - 11
Pages
11
Indexed
SCIE
SCOPUS
Journal Title
Advanced Energy Materials
Volume
13
Number
25
Start Page
1
End Page
11
URI
https://scholarworks.bwise.kr/erica/handle/2021.sw.erica/115231
DOI
10.1002/aenm.202204403
ISSN
1614-6832
1614-6840
Abstract
Nickel-iron layered double hydroxides (Ni-Fe LDHs) consist of stacked Fe3+-doped positively charged Ni-hydroxide layers containing charge-balancing anions and water molecules between the layers. Although Ni-Fe LDHs are highly active in the oxygen evolution reaction (OER) under alkaline conditions, their poor operational stability remains an issue. Herein, based on density functional theory calculations, it is proposed that the inclusion of a higher Fe content (>40%) than the theoretical Fe3+ limit (≈25%) permitted by Ni-Fe LDHs can lead to improved structural stability. An Fe-rich Ni-Fe LDH electrode is therefore prepared via a growth strategy based on the controlled oxygen corrosion of an Fe substrate, by enabling the incorporation of additional Fe2+ into the Ni2+-Fe3+ LDH structure. Indeed, microstructural and elemental analysis confirm the presence of additional Fe2+. This Fe-rich Ni-Fe LDH electrode not only offers a low OER overpotential (≈270 mV at 200 mA cm−2) but also exhibits an excellent operational stability under dynamic operating environments without any significant performance degradation or metal ion dissolution. Finally, the practical feasibility of the Fe-rich Ni-Fe LDH electrode is demonstrated in a single-cell (34.56 cm2) operation. These findings are expected to aid in the development of reliable OER electrodes for use in commercial water electrolyzers. © 2023 The Authors. Advanced Energy Materials published by Wiley-VCH GmbH.
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ERICA 공학대학 (ERICA 에너지바이오학과)
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