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Synergistically Enhanced Electrocatalytic Performance of an N-Doped Graphene Quantum Dot-Decorated 3D MoS(2)–Graphene Nanohybrid for Oxygen Reduction Reaction

[Image: see text] Nitrogen-doped graphene quantum dots (N-GQDs) were decorated on a three-dimensional (3D) MoS(2)–reduced graphene oxide (rGO) framework via a facile hydrothermal method. The distribution of N-GQDs on the 3D MoS(2)–rGO framework was confirmed using X-ray photoelectron spectroscopy, e...

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Autores principales: Vinoth, Ramalingam, Patil, Indrajit M., Pandikumar, Alagarsamy, Kakade, Bhalchandra A., Huang, Nay Ming, Dionysios, Dionysiou D., Neppolian, Bernaurdshaw
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2016
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6640782/
https://www.ncbi.nlm.nih.gov/pubmed/31457177
http://dx.doi.org/10.1021/acsomega.6b00275
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author Vinoth, Ramalingam
Patil, Indrajit M.
Pandikumar, Alagarsamy
Kakade, Bhalchandra A.
Huang, Nay Ming
Dionysios, Dionysiou D.
Neppolian, Bernaurdshaw
author_facet Vinoth, Ramalingam
Patil, Indrajit M.
Pandikumar, Alagarsamy
Kakade, Bhalchandra A.
Huang, Nay Ming
Dionysios, Dionysiou D.
Neppolian, Bernaurdshaw
author_sort Vinoth, Ramalingam
collection PubMed
description [Image: see text] Nitrogen-doped graphene quantum dots (N-GQDs) were decorated on a three-dimensional (3D) MoS(2)–reduced graphene oxide (rGO) framework via a facile hydrothermal method. The distribution of N-GQDs on the 3D MoS(2)–rGO framework was confirmed using X-ray photoelectron spectroscopy, energy dispersive X-ray elemental mapping, and high-resolution transmission electron microscopy techniques. The resultant 3D nanohybrid was successfully demonstrated as an efficient electrocatalyst toward the oxygen reduction reaction (ORR) under alkaline conditions. The chemical interaction between the electroactive N-GQDs and MoS(2)–rGO and the increased surface area and pore size of the N-GQDs/MoS(2)–rGO nanohybrid synergistically improved the ORR onset potential to +0.81 V vs reversible hydrogen electrode (RHE). Moreover, the N-GQDs/MoS(2)–rGO nanohybrid showed better ORR stability for up to 3000 cycles with negligible deviation in the half-wave potential (E(1/2)). Most importantly, the N-GQDs/MoS(2)–rGO nanohybrid exhibited a superior methanol tolerance ability even under a high concentration of methanol (3.0 M) in alkaline medium. Hence, the development of a low-cost metal-free graphene quantum dot-based 3D nanohybrid with high methanol tolerance may open up a novel strategy to design selective cathode electrocatalysts for direct methanol fuel cell applications.
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spelling pubmed-66407822019-08-27 Synergistically Enhanced Electrocatalytic Performance of an N-Doped Graphene Quantum Dot-Decorated 3D MoS(2)–Graphene Nanohybrid for Oxygen Reduction Reaction Vinoth, Ramalingam Patil, Indrajit M. Pandikumar, Alagarsamy Kakade, Bhalchandra A. Huang, Nay Ming Dionysios, Dionysiou D. Neppolian, Bernaurdshaw ACS Omega [Image: see text] Nitrogen-doped graphene quantum dots (N-GQDs) were decorated on a three-dimensional (3D) MoS(2)–reduced graphene oxide (rGO) framework via a facile hydrothermal method. The distribution of N-GQDs on the 3D MoS(2)–rGO framework was confirmed using X-ray photoelectron spectroscopy, energy dispersive X-ray elemental mapping, and high-resolution transmission electron microscopy techniques. The resultant 3D nanohybrid was successfully demonstrated as an efficient electrocatalyst toward the oxygen reduction reaction (ORR) under alkaline conditions. The chemical interaction between the electroactive N-GQDs and MoS(2)–rGO and the increased surface area and pore size of the N-GQDs/MoS(2)–rGO nanohybrid synergistically improved the ORR onset potential to +0.81 V vs reversible hydrogen electrode (RHE). Moreover, the N-GQDs/MoS(2)–rGO nanohybrid showed better ORR stability for up to 3000 cycles with negligible deviation in the half-wave potential (E(1/2)). Most importantly, the N-GQDs/MoS(2)–rGO nanohybrid exhibited a superior methanol tolerance ability even under a high concentration of methanol (3.0 M) in alkaline medium. Hence, the development of a low-cost metal-free graphene quantum dot-based 3D nanohybrid with high methanol tolerance may open up a novel strategy to design selective cathode electrocatalysts for direct methanol fuel cell applications. American Chemical Society 2016-11-18 /pmc/articles/PMC6640782/ /pubmed/31457177 http://dx.doi.org/10.1021/acsomega.6b00275 Text en Copyright © 2016 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Vinoth, Ramalingam
Patil, Indrajit M.
Pandikumar, Alagarsamy
Kakade, Bhalchandra A.
Huang, Nay Ming
Dionysios, Dionysiou D.
Neppolian, Bernaurdshaw
Synergistically Enhanced Electrocatalytic Performance of an N-Doped Graphene Quantum Dot-Decorated 3D MoS(2)–Graphene Nanohybrid for Oxygen Reduction Reaction
title Synergistically Enhanced Electrocatalytic Performance of an N-Doped Graphene Quantum Dot-Decorated 3D MoS(2)–Graphene Nanohybrid for Oxygen Reduction Reaction
title_full Synergistically Enhanced Electrocatalytic Performance of an N-Doped Graphene Quantum Dot-Decorated 3D MoS(2)–Graphene Nanohybrid for Oxygen Reduction Reaction
title_fullStr Synergistically Enhanced Electrocatalytic Performance of an N-Doped Graphene Quantum Dot-Decorated 3D MoS(2)–Graphene Nanohybrid for Oxygen Reduction Reaction
title_full_unstemmed Synergistically Enhanced Electrocatalytic Performance of an N-Doped Graphene Quantum Dot-Decorated 3D MoS(2)–Graphene Nanohybrid for Oxygen Reduction Reaction
title_short Synergistically Enhanced Electrocatalytic Performance of an N-Doped Graphene Quantum Dot-Decorated 3D MoS(2)–Graphene Nanohybrid for Oxygen Reduction Reaction
title_sort synergistically enhanced electrocatalytic performance of an n-doped graphene quantum dot-decorated 3d mos(2)–graphene nanohybrid for oxygen reduction reaction
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6640782/
https://www.ncbi.nlm.nih.gov/pubmed/31457177
http://dx.doi.org/10.1021/acsomega.6b00275
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