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Facile Synthesis of Co(3)O(4)@CoO@Co Gradient Core@Shell Nanoparticles and Their Applications for Oxygen Evolution and Reduction in Alkaline Electrolytes

We demonstrate a facile fabrication scheme for Co(3)O(4)@CoO@Co (gradient core@shell) nanoparticles on graphene and explore their electrocatalytic potentials for an oxygen evolution reaction (OER) and an oxygen reduction reaction (ORR) in alkaline electrolytes. The synthetic approach begins with the...

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Autores principales: Chou, Shih-Cheng, Tso, Kuang-Chih, Hsieh, Yi-Chieh, Sun, Bo-Yao, Lee, Jyh-Fu, Wu, Pu-Wei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7344865/
https://www.ncbi.nlm.nih.gov/pubmed/32545822
http://dx.doi.org/10.3390/ma13122703
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author Chou, Shih-Cheng
Tso, Kuang-Chih
Hsieh, Yi-Chieh
Sun, Bo-Yao
Lee, Jyh-Fu
Wu, Pu-Wei
author_facet Chou, Shih-Cheng
Tso, Kuang-Chih
Hsieh, Yi-Chieh
Sun, Bo-Yao
Lee, Jyh-Fu
Wu, Pu-Wei
author_sort Chou, Shih-Cheng
collection PubMed
description We demonstrate a facile fabrication scheme for Co(3)O(4)@CoO@Co (gradient core@shell) nanoparticles on graphene and explore their electrocatalytic potentials for an oxygen evolution reaction (OER) and an oxygen reduction reaction (ORR) in alkaline electrolytes. The synthetic approach begins with the preparation of Co(3)O(4) nanoparticles via a hydrothermal process, which is followed by a controlled hydrogen reduction treatment to render nanoparticles with radial constituents of Co(3)O(4)/CoO/Co (inside/outside). X-ray diffraction patterns confirm the formation of crystalline Co(3)O(4) nanoparticles, and their gradual transformation to cubic CoO and fcc Co on the surface. Images from transmission electron microscope reveal a core@shell microstructure. These Co(3)O(4)@CoO@Co nanoparticles show impressive activities and durability for OER. For ORR electrocatalysis, the Co(3)O(4)@CoO@Co nanoparticles are subjected to a galvanic displacement reaction in which the surface Co atoms undergo oxidative dissolution for the reduction of Pt ions from the electrolyte to form Co(3)O(4)@Pt nanoparticles. With commercial Pt/C as a benchmark, we determine the ORR activities in sequence of Pt/C > Co(3)O(4)@Pt > Co(3)O(4). Measurements from a rotation disk electrode at various rotation speeds indicate a 4-electron transfer path for Co(3)O(4)@Pt. In addition, the specific activity of Co(3)O(4)@Pt is more than two times greater than that of Pt/C.
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spelling pubmed-73448652020-07-09 Facile Synthesis of Co(3)O(4)@CoO@Co Gradient Core@Shell Nanoparticles and Their Applications for Oxygen Evolution and Reduction in Alkaline Electrolytes Chou, Shih-Cheng Tso, Kuang-Chih Hsieh, Yi-Chieh Sun, Bo-Yao Lee, Jyh-Fu Wu, Pu-Wei Materials (Basel) Article We demonstrate a facile fabrication scheme for Co(3)O(4)@CoO@Co (gradient core@shell) nanoparticles on graphene and explore their electrocatalytic potentials for an oxygen evolution reaction (OER) and an oxygen reduction reaction (ORR) in alkaline electrolytes. The synthetic approach begins with the preparation of Co(3)O(4) nanoparticles via a hydrothermal process, which is followed by a controlled hydrogen reduction treatment to render nanoparticles with radial constituents of Co(3)O(4)/CoO/Co (inside/outside). X-ray diffraction patterns confirm the formation of crystalline Co(3)O(4) nanoparticles, and their gradual transformation to cubic CoO and fcc Co on the surface. Images from transmission electron microscope reveal a core@shell microstructure. These Co(3)O(4)@CoO@Co nanoparticles show impressive activities and durability for OER. For ORR electrocatalysis, the Co(3)O(4)@CoO@Co nanoparticles are subjected to a galvanic displacement reaction in which the surface Co atoms undergo oxidative dissolution for the reduction of Pt ions from the electrolyte to form Co(3)O(4)@Pt nanoparticles. With commercial Pt/C as a benchmark, we determine the ORR activities in sequence of Pt/C > Co(3)O(4)@Pt > Co(3)O(4). Measurements from a rotation disk electrode at various rotation speeds indicate a 4-electron transfer path for Co(3)O(4)@Pt. In addition, the specific activity of Co(3)O(4)@Pt is more than two times greater than that of Pt/C. MDPI 2020-06-13 /pmc/articles/PMC7344865/ /pubmed/32545822 http://dx.doi.org/10.3390/ma13122703 Text en © 2020 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Chou, Shih-Cheng
Tso, Kuang-Chih
Hsieh, Yi-Chieh
Sun, Bo-Yao
Lee, Jyh-Fu
Wu, Pu-Wei
Facile Synthesis of Co(3)O(4)@CoO@Co Gradient Core@Shell Nanoparticles and Their Applications for Oxygen Evolution and Reduction in Alkaline Electrolytes
title Facile Synthesis of Co(3)O(4)@CoO@Co Gradient Core@Shell Nanoparticles and Their Applications for Oxygen Evolution and Reduction in Alkaline Electrolytes
title_full Facile Synthesis of Co(3)O(4)@CoO@Co Gradient Core@Shell Nanoparticles and Their Applications for Oxygen Evolution and Reduction in Alkaline Electrolytes
title_fullStr Facile Synthesis of Co(3)O(4)@CoO@Co Gradient Core@Shell Nanoparticles and Their Applications for Oxygen Evolution and Reduction in Alkaline Electrolytes
title_full_unstemmed Facile Synthesis of Co(3)O(4)@CoO@Co Gradient Core@Shell Nanoparticles and Their Applications for Oxygen Evolution and Reduction in Alkaline Electrolytes
title_short Facile Synthesis of Co(3)O(4)@CoO@Co Gradient Core@Shell Nanoparticles and Their Applications for Oxygen Evolution and Reduction in Alkaline Electrolytes
title_sort facile synthesis of co(3)o(4)@coo@co gradient core@shell nanoparticles and their applications for oxygen evolution and reduction in alkaline electrolytes
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7344865/
https://www.ncbi.nlm.nih.gov/pubmed/32545822
http://dx.doi.org/10.3390/ma13122703
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