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Unveiling reactive origin through the in situ 2D core-shell formation, Ni (CN)(2)@Ni2P, derived from Hofmann-type MOF for water oxidation

Authors
Kim, JiwonChoi, Hyung WookKim, JongseokYoo, Jung HyeonJeong, Dong InLee, Ui YoungChoi, HyukKang, Bong KyunAn, Ki-SeokKim, Hyun YouYoon, Dae Ho
Issue Date
Jun-2023
Publisher
Elsevier BV
Keywords
Water splitting; Oxygen evolution reaction; Transition metal electrocatalysts; Two-dimensional materials; Core-shell heterostructure
Citation
Chemical Engineering Journal, v.465
Journal Title
Chemical Engineering Journal
Volume
465
URI
https://scholarworks.bwise.kr/sch/handle/2021.sw.sch/22516
DOI
10.1016/j.cej.2023.142705
ISSN
1385-8947
1873-3212
Abstract
The electrochemical water splitting into pure hydrogen (H2) and oxygen (O2) is considered the most promising green energy generation system. However, so far, the bottleneck of the oxygen evolution reaction (OER) has demanded kinetically and thermodynamically effective electrocatalysts, and simultaneously, replacement of the noble metal-based catalysts. In this work, 2D Ni Hofmann-type MOF is suggested as a new type of versatile template to obtain freestanding nanoplate and concurrently assert the intrinsic properties of 2D structure. This study reports the in situ core-shell formation upon 2D Ni H-MOF to design the topological 2D Ni(CN)2@Ni2P core-shell heterostructure, which retains the organic-linked structure as the core, and exposes reactive sites directly onto the shell. The synergistic effect of the 2D Ni(CN)2@Ni2P core-shell heterostructure exhibits remarkable OER activity with overpotential values of 356.8 and 442.8 mV to achieve current densities of 50 and 100 mA/cm2, respectively, surpassing the single-phase catalysts and the benchmark RuO2. In addition, the stability shows 97.8 and 94.8 % retention of the initial activity after 24 and 100 h electrolysis, respectively. Further, density functional theory provides deep insight into the heterointerface engineering by which the electronic modulation successfully optimizes the binding free energy of intermediate, thereby promoting the OER performances of the 2D Ni(CN)2@Ni2P core-shell heterostructure.
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