Hierarchically Structured Graphene Aerogel Supported Nickel–Cobalt Oxide Nanowires as an Efficient Electrocatalyst for Oxygen Evolution Reaction

The rational design of a heterostructure electrocatalyst is an attractive strategy to produce hydrogen energy by electrochemical water splitting. Herein, we have constructed hierarchically structured architectures by immobilizing nickel–cobalt oxide nanowires on/beneath the surface of reduced graphe...

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Published in:Molecules
Main Authors: Donglei Guo, Jiaqi Xu, Guilong Liu, Xu Yu
Format: Article
Language:English
Published: MDPI AG 2024-04-01
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Online Access:https://www.mdpi.com/1420-3049/29/8/1805
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author Donglei Guo
Jiaqi Xu
Guilong Liu
Xu Yu
author_facet Donglei Guo
Jiaqi Xu
Guilong Liu
Xu Yu
author_sort Donglei Guo
collection DOAJ
container_title Molecules
description The rational design of a heterostructure electrocatalyst is an attractive strategy to produce hydrogen energy by electrochemical water splitting. Herein, we have constructed hierarchically structured architectures by immobilizing nickel–cobalt oxide nanowires on/beneath the surface of reduced graphene aerogels (NiCoO<sub>2</sub>/rGAs) through solvent–thermal and activation treatments. The morphological structure of NiCoO<sub>2</sub>/rGAs was characterized by microscopic analysis, and the porous structure not only accelerates the electrolyte ion diffusion but also prevents the agglomeration of NiCoO<sub>2</sub> nanowires, which is favorable to expose the large surface area and active sites. As further confirmed by the spectroscopic analysis, the tuned surface chemical state can boost the catalytic active sites to show the improved oxygen evolution reaction performance in alkaline electrolytes. Due to the synergistic effect of morphology and composition effect, NiCoO<sub>2</sub>/rGAs show the overpotential of 258 mV at the current density of 10 mA cm<sup>−2</sup>. Meanwhile, the small values of the Tafel slope and charge transfer resistance imply that NiCoO<sub>2</sub>/rGAs own fast kinetic behavior during the OER test. The overlap of CV curves at the initial and 1001st cycles and almost no change in current density after the chronoamperometric (CA) test for 10 h confirm that NiCoO<sub>2</sub>/rGAs own exceptional catalytic stability in a 1 M KOH electrolyte. This work provides a promising way to fabricate the hierarchically structured nanomaterials as efficient electrocatalysts for hydrogen production.
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spelling doaj-art-e80b258b102246d0920358317c471cc02025-08-19T23:56:35ZengMDPI AGMolecules1420-30492024-04-01298180510.3390/molecules29081805Hierarchically Structured Graphene Aerogel Supported Nickel–Cobalt Oxide Nanowires as an Efficient Electrocatalyst for Oxygen Evolution ReactionDonglei Guo0Jiaqi Xu1Guilong Liu2Xu Yu3Key Laboratory of Function-Oriented Porous Materials, College of Chemistry and Chemical Engineering, Luoyang Normal University, Luoyang 471934, ChinaKey Laboratory of Function-Oriented Porous Materials, College of Chemistry and Chemical Engineering, Luoyang Normal University, Luoyang 471934, ChinaKey Laboratory of Function-Oriented Porous Materials, College of Chemistry and Chemical Engineering, Luoyang Normal University, Luoyang 471934, ChinaInstitute of Innovation Materials and Energy, School of Chemistry and Chemical Engineering, Yangzhou University, Yangzhou 225002, ChinaThe rational design of a heterostructure electrocatalyst is an attractive strategy to produce hydrogen energy by electrochemical water splitting. Herein, we have constructed hierarchically structured architectures by immobilizing nickel–cobalt oxide nanowires on/beneath the surface of reduced graphene aerogels (NiCoO<sub>2</sub>/rGAs) through solvent–thermal and activation treatments. The morphological structure of NiCoO<sub>2</sub>/rGAs was characterized by microscopic analysis, and the porous structure not only accelerates the electrolyte ion diffusion but also prevents the agglomeration of NiCoO<sub>2</sub> nanowires, which is favorable to expose the large surface area and active sites. As further confirmed by the spectroscopic analysis, the tuned surface chemical state can boost the catalytic active sites to show the improved oxygen evolution reaction performance in alkaline electrolytes. Due to the synergistic effect of morphology and composition effect, NiCoO<sub>2</sub>/rGAs show the overpotential of 258 mV at the current density of 10 mA cm<sup>−2</sup>. Meanwhile, the small values of the Tafel slope and charge transfer resistance imply that NiCoO<sub>2</sub>/rGAs own fast kinetic behavior during the OER test. The overlap of CV curves at the initial and 1001st cycles and almost no change in current density after the chronoamperometric (CA) test for 10 h confirm that NiCoO<sub>2</sub>/rGAs own exceptional catalytic stability in a 1 M KOH electrolyte. This work provides a promising way to fabricate the hierarchically structured nanomaterials as efficient electrocatalysts for hydrogen production.https://www.mdpi.com/1420-3049/29/8/1805hierarchical structurenickel-cobalt oxidegraphene aerogeloxygen evolutiontransition metal nanowire
spellingShingle Donglei Guo
Jiaqi Xu
Guilong Liu
Xu Yu
Hierarchically Structured Graphene Aerogel Supported Nickel–Cobalt Oxide Nanowires as an Efficient Electrocatalyst for Oxygen Evolution Reaction
hierarchical structure
nickel-cobalt oxide
graphene aerogel
oxygen evolution
transition metal nanowire
title Hierarchically Structured Graphene Aerogel Supported Nickel–Cobalt Oxide Nanowires as an Efficient Electrocatalyst for Oxygen Evolution Reaction
title_full Hierarchically Structured Graphene Aerogel Supported Nickel–Cobalt Oxide Nanowires as an Efficient Electrocatalyst for Oxygen Evolution Reaction
title_fullStr Hierarchically Structured Graphene Aerogel Supported Nickel–Cobalt Oxide Nanowires as an Efficient Electrocatalyst for Oxygen Evolution Reaction
title_full_unstemmed Hierarchically Structured Graphene Aerogel Supported Nickel–Cobalt Oxide Nanowires as an Efficient Electrocatalyst for Oxygen Evolution Reaction
title_short Hierarchically Structured Graphene Aerogel Supported Nickel–Cobalt Oxide Nanowires as an Efficient Electrocatalyst for Oxygen Evolution Reaction
title_sort hierarchically structured graphene aerogel supported nickel cobalt oxide nanowires as an efficient electrocatalyst for oxygen evolution reaction
topic hierarchical structure
nickel-cobalt oxide
graphene aerogel
oxygen evolution
transition metal nanowire
url https://www.mdpi.com/1420-3049/29/8/1805
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AT guilongliu hierarchicallystructuredgrapheneaerogelsupportednickelcobaltoxidenanowiresasanefficientelectrocatalystforoxygenevolutionreaction
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