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Bimetallic Cu/Fe MOF-Based Nanosheet Film via Binder-Free Drop-Casting Route: A Highly Efficient Urea-Electrolysis Catalyst

Developing efficient electrocatalysts for urea oxidation reaction (UOR) can be a promising alternative strategy to substitute the sluggish oxygen evolution reaction (OER), thereby producing hydrogen at a lower cell-voltage. Herein, we synthesized a binder-free thin film of ultrathin sheets of bimeta...

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Autores principales: Patil, Supriya A., Shrestha, Nabeen K., Inamdar, Akbar I., Bathula, Chinna, Jung, Jongwan, Hussain, Sajjad, Nazir, Ghazanfar, Kaseem, Mosab, Im, Hyunsik, Kim, Hyungsang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9182062/
https://www.ncbi.nlm.nih.gov/pubmed/35683771
http://dx.doi.org/10.3390/nano12111916
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author Patil, Supriya A.
Shrestha, Nabeen K.
Inamdar, Akbar I.
Bathula, Chinna
Jung, Jongwan
Hussain, Sajjad
Nazir, Ghazanfar
Kaseem, Mosab
Im, Hyunsik
Kim, Hyungsang
author_facet Patil, Supriya A.
Shrestha, Nabeen K.
Inamdar, Akbar I.
Bathula, Chinna
Jung, Jongwan
Hussain, Sajjad
Nazir, Ghazanfar
Kaseem, Mosab
Im, Hyunsik
Kim, Hyungsang
author_sort Patil, Supriya A.
collection PubMed
description Developing efficient electrocatalysts for urea oxidation reaction (UOR) can be a promising alternative strategy to substitute the sluggish oxygen evolution reaction (OER), thereby producing hydrogen at a lower cell-voltage. Herein, we synthesized a binder-free thin film of ultrathin sheets of bimetallic Cu-Fe-based metal–organic frameworks (Cu/Fe-MOFs) on a nickel foam via a drop-casting route. In addition to the scalable route, the drop-casted film-electrode demonstrates the lower UOR potentials of 1.59, 1.58, 1.54, 1.51, 1.43 and 1.37 V vs. RHE to achieve the current densities of 2500, 2000, 1000, 500, 100 and 10 mA cm(−2), respectively. These UOR potentials are relatively lower than that acquired by the pristine Fe-MOF-based film-electrode synthesized via a similar route. For example, at 1.59 V vs. RHE, the Cu/Fe-MOF electrode exhibits a remarkably ultra-high anodic current density of 2500 mA cm(−2), while the pristine Fe-MOF electrode exhibits only 949.10 mA cm(−2). It is worth noting that the Cu/Fe-MOF electrode at this potential exhibits an OER current density of only 725 mA cm(−2), which is far inconsequential as compared to the UOR current densities, implying the profound impact of the bimetallic cores of the MOFs on catalyzing UOR. In addition, the Cu/Fe-MOF electrode also exhibits a long-term electrochemical robustness during UOR.
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spelling pubmed-91820622022-06-10 Bimetallic Cu/Fe MOF-Based Nanosheet Film via Binder-Free Drop-Casting Route: A Highly Efficient Urea-Electrolysis Catalyst Patil, Supriya A. Shrestha, Nabeen K. Inamdar, Akbar I. Bathula, Chinna Jung, Jongwan Hussain, Sajjad Nazir, Ghazanfar Kaseem, Mosab Im, Hyunsik Kim, Hyungsang Nanomaterials (Basel) Article Developing efficient electrocatalysts for urea oxidation reaction (UOR) can be a promising alternative strategy to substitute the sluggish oxygen evolution reaction (OER), thereby producing hydrogen at a lower cell-voltage. Herein, we synthesized a binder-free thin film of ultrathin sheets of bimetallic Cu-Fe-based metal–organic frameworks (Cu/Fe-MOFs) on a nickel foam via a drop-casting route. In addition to the scalable route, the drop-casted film-electrode demonstrates the lower UOR potentials of 1.59, 1.58, 1.54, 1.51, 1.43 and 1.37 V vs. RHE to achieve the current densities of 2500, 2000, 1000, 500, 100 and 10 mA cm(−2), respectively. These UOR potentials are relatively lower than that acquired by the pristine Fe-MOF-based film-electrode synthesized via a similar route. For example, at 1.59 V vs. RHE, the Cu/Fe-MOF electrode exhibits a remarkably ultra-high anodic current density of 2500 mA cm(−2), while the pristine Fe-MOF electrode exhibits only 949.10 mA cm(−2). It is worth noting that the Cu/Fe-MOF electrode at this potential exhibits an OER current density of only 725 mA cm(−2), which is far inconsequential as compared to the UOR current densities, implying the profound impact of the bimetallic cores of the MOFs on catalyzing UOR. In addition, the Cu/Fe-MOF electrode also exhibits a long-term electrochemical robustness during UOR. MDPI 2022-06-03 /pmc/articles/PMC9182062/ /pubmed/35683771 http://dx.doi.org/10.3390/nano12111916 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Patil, Supriya A.
Shrestha, Nabeen K.
Inamdar, Akbar I.
Bathula, Chinna
Jung, Jongwan
Hussain, Sajjad
Nazir, Ghazanfar
Kaseem, Mosab
Im, Hyunsik
Kim, Hyungsang
Bimetallic Cu/Fe MOF-Based Nanosheet Film via Binder-Free Drop-Casting Route: A Highly Efficient Urea-Electrolysis Catalyst
title Bimetallic Cu/Fe MOF-Based Nanosheet Film via Binder-Free Drop-Casting Route: A Highly Efficient Urea-Electrolysis Catalyst
title_full Bimetallic Cu/Fe MOF-Based Nanosheet Film via Binder-Free Drop-Casting Route: A Highly Efficient Urea-Electrolysis Catalyst
title_fullStr Bimetallic Cu/Fe MOF-Based Nanosheet Film via Binder-Free Drop-Casting Route: A Highly Efficient Urea-Electrolysis Catalyst
title_full_unstemmed Bimetallic Cu/Fe MOF-Based Nanosheet Film via Binder-Free Drop-Casting Route: A Highly Efficient Urea-Electrolysis Catalyst
title_short Bimetallic Cu/Fe MOF-Based Nanosheet Film via Binder-Free Drop-Casting Route: A Highly Efficient Urea-Electrolysis Catalyst
title_sort bimetallic cu/fe mof-based nanosheet film via binder-free drop-casting route: a highly efficient urea-electrolysis catalyst
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9182062/
https://www.ncbi.nlm.nih.gov/pubmed/35683771
http://dx.doi.org/10.3390/nano12111916
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