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Imidazolatic-Framework Bimetal Electrocatalysts with a Mixed-Valence Surface Anchored on an rGO Matrix for Oxygen Reduction, Water Splitting, and Dye Degradation

[Image: see text] This paper presents a simple strategy for manufacturing bifunctional electrocatalysts—graphene nanosheets (GNS) coated with an ultrafine NiCo-MOF as nanocomposites (denoted NiCo-MOF@GNS) having a N-doped defect-rich and abundant cavity structure through one-pool treatment of metal–...

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Autores principales: Palani, Raja, Anitha, Venkatasamy, Karuppiah, Chelladurai, Rajalakshmi, Subramanian, Li, Ying-Jeng Jame, Hung, Tai-Feng, Yang, Chun-Chen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8223441/
https://www.ncbi.nlm.nih.gov/pubmed/34179648
http://dx.doi.org/10.1021/acsomega.1c01870
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author Palani, Raja
Anitha, Venkatasamy
Karuppiah, Chelladurai
Rajalakshmi, Subramanian
Li, Ying-Jeng Jame
Hung, Tai-Feng
Yang, Chun-Chen
author_facet Palani, Raja
Anitha, Venkatasamy
Karuppiah, Chelladurai
Rajalakshmi, Subramanian
Li, Ying-Jeng Jame
Hung, Tai-Feng
Yang, Chun-Chen
author_sort Palani, Raja
collection PubMed
description [Image: see text] This paper presents a simple strategy for manufacturing bifunctional electrocatalysts—graphene nanosheets (GNS) coated with an ultrafine NiCo-MOF as nanocomposites (denoted NiCo-MOF@GNS) having a N-doped defect-rich and abundant cavity structure through one-pool treatment of metal–organic frameworks (MOFs). The precursors included N-doped dodecahedron-like graphene nanosheets (GNS), in which the NiCo-MOF was encompassed within the inner cavities of the GNS (NiCo-MOF@GNS) at the end or middle portion of the tubular furnace with several graphene layers. Volatile imidazolate N(x) species were trapped by the NiCo-MOF nanosheets during the pyrolysis process, simultaneously inserting N atoms into the carbon matrix to achieve the defect-rich porous nanosheets and the abundantly porous cavity structure. With high durability, the as-prepared nanomaterials displayed simultaneously improved performance in the oxygen reduction reaction (ORR), the oxygen evolution reaction (OER), and photocatalysis. In particular, our material NiCo-MOF@GNS-700 exhibited excellent electrocatalytic activity, including a half-wave potential of 0.83 V (E(ORR, 1/2)), a low operating voltage of 1.53 V (E(OER, 10)) at 10 mA cm(–2), a potential difference (ΔE) of 1.02 V between E(OER, 10) and E(ORR, 1/2) in 0.1 M KOH, and a low band gap of 2.61 eV. This remarkable behavior was due to the structure of the defect-rich porous carbon nanosheets and the synergistic impact of the NPs in the NiCo-MOF, the N-doped carbon, and NiCo-N(x). Furthermore, the hollow structure enhanced the conductivity and stability. This useful archetypal template allows the construction of effective and stable bifunctional electrocatalysts, with potential for practical viability for energy conversion and storage.
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spelling pubmed-82234412021-06-25 Imidazolatic-Framework Bimetal Electrocatalysts with a Mixed-Valence Surface Anchored on an rGO Matrix for Oxygen Reduction, Water Splitting, and Dye Degradation Palani, Raja Anitha, Venkatasamy Karuppiah, Chelladurai Rajalakshmi, Subramanian Li, Ying-Jeng Jame Hung, Tai-Feng Yang, Chun-Chen ACS Omega [Image: see text] This paper presents a simple strategy for manufacturing bifunctional electrocatalysts—graphene nanosheets (GNS) coated with an ultrafine NiCo-MOF as nanocomposites (denoted NiCo-MOF@GNS) having a N-doped defect-rich and abundant cavity structure through one-pool treatment of metal–organic frameworks (MOFs). The precursors included N-doped dodecahedron-like graphene nanosheets (GNS), in which the NiCo-MOF was encompassed within the inner cavities of the GNS (NiCo-MOF@GNS) at the end or middle portion of the tubular furnace with several graphene layers. Volatile imidazolate N(x) species were trapped by the NiCo-MOF nanosheets during the pyrolysis process, simultaneously inserting N atoms into the carbon matrix to achieve the defect-rich porous nanosheets and the abundantly porous cavity structure. With high durability, the as-prepared nanomaterials displayed simultaneously improved performance in the oxygen reduction reaction (ORR), the oxygen evolution reaction (OER), and photocatalysis. In particular, our material NiCo-MOF@GNS-700 exhibited excellent electrocatalytic activity, including a half-wave potential of 0.83 V (E(ORR, 1/2)), a low operating voltage of 1.53 V (E(OER, 10)) at 10 mA cm(–2), a potential difference (ΔE) of 1.02 V between E(OER, 10) and E(ORR, 1/2) in 0.1 M KOH, and a low band gap of 2.61 eV. This remarkable behavior was due to the structure of the defect-rich porous carbon nanosheets and the synergistic impact of the NPs in the NiCo-MOF, the N-doped carbon, and NiCo-N(x). Furthermore, the hollow structure enhanced the conductivity and stability. This useful archetypal template allows the construction of effective and stable bifunctional electrocatalysts, with potential for practical viability for energy conversion and storage. American Chemical Society 2021-06-11 /pmc/articles/PMC8223441/ /pubmed/34179648 http://dx.doi.org/10.1021/acsomega.1c01870 Text en © 2021 The Authors. Published by American Chemical Society Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Palani, Raja
Anitha, Venkatasamy
Karuppiah, Chelladurai
Rajalakshmi, Subramanian
Li, Ying-Jeng Jame
Hung, Tai-Feng
Yang, Chun-Chen
Imidazolatic-Framework Bimetal Electrocatalysts with a Mixed-Valence Surface Anchored on an rGO Matrix for Oxygen Reduction, Water Splitting, and Dye Degradation
title Imidazolatic-Framework Bimetal Electrocatalysts with a Mixed-Valence Surface Anchored on an rGO Matrix for Oxygen Reduction, Water Splitting, and Dye Degradation
title_full Imidazolatic-Framework Bimetal Electrocatalysts with a Mixed-Valence Surface Anchored on an rGO Matrix for Oxygen Reduction, Water Splitting, and Dye Degradation
title_fullStr Imidazolatic-Framework Bimetal Electrocatalysts with a Mixed-Valence Surface Anchored on an rGO Matrix for Oxygen Reduction, Water Splitting, and Dye Degradation
title_full_unstemmed Imidazolatic-Framework Bimetal Electrocatalysts with a Mixed-Valence Surface Anchored on an rGO Matrix for Oxygen Reduction, Water Splitting, and Dye Degradation
title_short Imidazolatic-Framework Bimetal Electrocatalysts with a Mixed-Valence Surface Anchored on an rGO Matrix for Oxygen Reduction, Water Splitting, and Dye Degradation
title_sort imidazolatic-framework bimetal electrocatalysts with a mixed-valence surface anchored on an rgo matrix for oxygen reduction, water splitting, and dye degradation
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8223441/
https://www.ncbi.nlm.nih.gov/pubmed/34179648
http://dx.doi.org/10.1021/acsomega.1c01870
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