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Metal-Organic Frameworks Offering Tunable Binary Active Sites toward Highly Efficient Urea Oxidation Electrolysis

Electrocatalytic urea oxidation reaction (UOR) is regarded as an effective yet challenging approach for the degradation of urea in wastewater into harmless N(2) and CO(2). To overcome the sluggish kinetics, catalytically active sites should be rationally designed to maneuver the multiple key steps o...

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Autores principales: Xu, Xuefei, Deng, Qingming, Chen, Hsiao-Chien, Humayun, Muhammad, Duan, Delong, Zhang, Xia, Sun, Huachuan, Ao, Xiang, Xue, Xinying, Nikiforov, Anton, Huo, Kaifu, Wang, Chundong, Xiong, Yujie
Formato: Online Artículo Texto
Lenguaje:English
Publicado: AAAS 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9275073/
https://www.ncbi.nlm.nih.gov/pubmed/35935128
http://dx.doi.org/10.34133/2022/9837109
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author Xu, Xuefei
Deng, Qingming
Chen, Hsiao-Chien
Humayun, Muhammad
Duan, Delong
Zhang, Xia
Sun, Huachuan
Ao, Xiang
Xue, Xinying
Nikiforov, Anton
Huo, Kaifu
Wang, Chundong
Xiong, Yujie
author_facet Xu, Xuefei
Deng, Qingming
Chen, Hsiao-Chien
Humayun, Muhammad
Duan, Delong
Zhang, Xia
Sun, Huachuan
Ao, Xiang
Xue, Xinying
Nikiforov, Anton
Huo, Kaifu
Wang, Chundong
Xiong, Yujie
author_sort Xu, Xuefei
collection PubMed
description Electrocatalytic urea oxidation reaction (UOR) is regarded as an effective yet challenging approach for the degradation of urea in wastewater into harmless N(2) and CO(2). To overcome the sluggish kinetics, catalytically active sites should be rationally designed to maneuver the multiple key steps of intermediate adsorption and desorption. Herein, we demonstrate that metal-organic frameworks (MOFs) can provide an ideal platform for tailoring binary active sites to facilitate the rate-determining steps, achieving remarkable electrocatalytic activity toward UOR. Specifically, the MOF (namely, NiMn(0.14)-BDC) based on Ni/Mn sites and terephthalic acid (BDC) ligands exhibits a low voltage of 1.317 V to deliver a current density of 10 mA cm(−2). As a result, a high turnover frequency (TOF) of 0.15 s(−1) is achieved at a voltage of 1.4 V, which enables a urea degradation rate of 81.87% in 0.33 M urea solution. The combination of experimental characterization with theoretical calculation reveals that the Ni and Mn sites play synergistic roles in maneuvering the evolution of urea molecules and key reaction intermediates during the UOR, while the binary Ni/Mn sites in MOF offer the tunability for electronic structure and d-band center impacting on the intermediate evolution. This work provides important insights into active site design by leveraging MOF platform and represents a solid step toward highly efficient UOR with MOF-based electrocatalysts.
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spelling pubmed-92750732022-08-05 Metal-Organic Frameworks Offering Tunable Binary Active Sites toward Highly Efficient Urea Oxidation Electrolysis Xu, Xuefei Deng, Qingming Chen, Hsiao-Chien Humayun, Muhammad Duan, Delong Zhang, Xia Sun, Huachuan Ao, Xiang Xue, Xinying Nikiforov, Anton Huo, Kaifu Wang, Chundong Xiong, Yujie Research (Wash D C) Research Article Electrocatalytic urea oxidation reaction (UOR) is regarded as an effective yet challenging approach for the degradation of urea in wastewater into harmless N(2) and CO(2). To overcome the sluggish kinetics, catalytically active sites should be rationally designed to maneuver the multiple key steps of intermediate adsorption and desorption. Herein, we demonstrate that metal-organic frameworks (MOFs) can provide an ideal platform for tailoring binary active sites to facilitate the rate-determining steps, achieving remarkable electrocatalytic activity toward UOR. Specifically, the MOF (namely, NiMn(0.14)-BDC) based on Ni/Mn sites and terephthalic acid (BDC) ligands exhibits a low voltage of 1.317 V to deliver a current density of 10 mA cm(−2). As a result, a high turnover frequency (TOF) of 0.15 s(−1) is achieved at a voltage of 1.4 V, which enables a urea degradation rate of 81.87% in 0.33 M urea solution. The combination of experimental characterization with theoretical calculation reveals that the Ni and Mn sites play synergistic roles in maneuvering the evolution of urea molecules and key reaction intermediates during the UOR, while the binary Ni/Mn sites in MOF offer the tunability for electronic structure and d-band center impacting on the intermediate evolution. This work provides important insights into active site design by leveraging MOF platform and represents a solid step toward highly efficient UOR with MOF-based electrocatalysts. AAAS 2022-06-27 /pmc/articles/PMC9275073/ /pubmed/35935128 http://dx.doi.org/10.34133/2022/9837109 Text en Copyright © 2022 Xuefei Xu et al. https://creativecommons.org/licenses/by/4.0/Exclusive Licensee Science and Technology Review Publishing House. Distributed under a Creative Commons Attribution License (CC BY 4.0).
spellingShingle Research Article
Xu, Xuefei
Deng, Qingming
Chen, Hsiao-Chien
Humayun, Muhammad
Duan, Delong
Zhang, Xia
Sun, Huachuan
Ao, Xiang
Xue, Xinying
Nikiforov, Anton
Huo, Kaifu
Wang, Chundong
Xiong, Yujie
Metal-Organic Frameworks Offering Tunable Binary Active Sites toward Highly Efficient Urea Oxidation Electrolysis
title Metal-Organic Frameworks Offering Tunable Binary Active Sites toward Highly Efficient Urea Oxidation Electrolysis
title_full Metal-Organic Frameworks Offering Tunable Binary Active Sites toward Highly Efficient Urea Oxidation Electrolysis
title_fullStr Metal-Organic Frameworks Offering Tunable Binary Active Sites toward Highly Efficient Urea Oxidation Electrolysis
title_full_unstemmed Metal-Organic Frameworks Offering Tunable Binary Active Sites toward Highly Efficient Urea Oxidation Electrolysis
title_short Metal-Organic Frameworks Offering Tunable Binary Active Sites toward Highly Efficient Urea Oxidation Electrolysis
title_sort metal-organic frameworks offering tunable binary active sites toward highly efficient urea oxidation electrolysis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9275073/
https://www.ncbi.nlm.nih.gov/pubmed/35935128
http://dx.doi.org/10.34133/2022/9837109
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