Open Access System for Information Sharing

Login Library

 

Article
Cited 0 time in webofscience Cited 1 time in scopus
Metadata Downloads

Tailoring electrochemical water oxidation activity from the isostructural series of alkaline-stable bimetallic Fe,Ni-azolate metal-organic frameworks SCIE SCOPUS

Title
Tailoring electrochemical water oxidation activity from the isostructural series of alkaline-stable bimetallic Fe,Ni-azolate metal-organic frameworks
Authors
PARK, SARAH SUNAHMinseok KimJaewoo JeongDong Hyun KimGeunchan ParkJaekyung YiSinhyeop KimHyungjun KimChang Hyuck ChoiHyeyoung Shin
Date Issued
2024-05
Publisher
Wiley-VCH Verlag
Abstract
Incorporating electrocatalytic active sites into the reticular framework allows for the design of novel catalytic structures promoting desired catalytic reactions with efficient mass transfer. However, to fully exploit the advantages of such a framework, it is crucial to ensure the electrochemical stability of the material. In this context, alkaline-stable bimetallic MxNi2-xCl2BTDD (M = Fe, Co) metal–organic frameworks (MOFs) are employed as electrocatalysts for alkaline water oxidation reaction (WOR) to understand the correlation between secondary metal incorporation and catalytic activity changes. For a specific Fe ratio within the MOF, the optimal catalytic activity is achieved at an overpotential of 315 mV at a WOR current density of 10 mA cm−2geo. Based on its well-defined crystal structure and uniformly arranged metal nodes, which are not limited to specific facets, the cooperative electrocatalytic mechanism during the faradaic WOR process is investigated through operando Raman spectroscopy and density functional theory calculations. These results enable the interpretation of the electrochemical WOR mechanism based on MOF, providing a further fundamental understanding of electrocatalytic activity in bimetallic systems. © 2024 The Authors. Advanced Energy Materials published by Wiley-VCH GmbH.
URI
https://oasis.postech.ac.kr/handle/2014.oak/123825
DOI
10.1002/aenm.202401198
ISSN
1614-6832
Article Type
Article
Citation
Advanced Energy Materials, 2024-05
Files in This Item:
There are no files associated with this item.

qr_code

  • mendeley

Items in DSpace are protected by copyright, with all rights reserved, unless otherwise indicated.

Related Researcher

Views & Downloads

Browse