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Improvement of O(2) adsorption for α-MnO(2) as an oxygen reduction catalyst by Zr(4+) doping

Zr(4+) doped α-MnO(2) nanowires were successfully synthesized by a hydrothermal method. XRD, SEM, TEM and XPS analyses indicated that Mn(3+) ions, Mn(4+) ions, Mn(4+δ) ions and Zr(4+) ions co-existed in the crystal structure of synthesized Zr(4+) doped α-MnO(2) nanowires. Zr(4+) ions occupied the po...

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Detalles Bibliográficos
Autores principales: Wang, Yicheng, Li, Yaozong, Lu, Zhenghang, Wang, Wei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9077497/
https://www.ncbi.nlm.nih.gov/pubmed/35541162
http://dx.doi.org/10.1039/c7ra10079e
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author Wang, Yicheng
Li, Yaozong
Lu, Zhenghang
Wang, Wei
author_facet Wang, Yicheng
Li, Yaozong
Lu, Zhenghang
Wang, Wei
author_sort Wang, Yicheng
collection PubMed
description Zr(4+) doped α-MnO(2) nanowires were successfully synthesized by a hydrothermal method. XRD, SEM, TEM and XPS analyses indicated that Mn(3+) ions, Mn(4+) ions, Mn(4+δ) ions and Zr(4+) ions co-existed in the crystal structure of synthesized Zr(4+) doped α-MnO(2) nanowires. Zr(4+) ions occupied the positions originally belonging to elemental manganese in the crystal structure and resulted in a mutual action between Zr(4+) ions and Mn(3+) ions. The mutual action made Mn(3+) ions tend to lose their electrons and Zr(4+) ions tend to get electrons. Cathodic polarization analyses showed that the electrocatalytic activity of α-MnO(2) for oxygen reduction reaction (ORR) was remarkably improved by Zr(4+) doping and the Zr/Mn molar ratio notably affected the ORR performance of the air electrodes prepared by Zr(4+) doped α-MnO(2) nanowires. The highest ORR current density of the air electrodes prepared by Zr(4+) doped α-MnO(2) nanowires in alkaline solution appeared at Zr/Mn molar ratio of 1 : 110, which was 23% higher than those prepared by α-MnO(2) nanowires. EIS analyses indicated that the adsorption process of O(2) molecules on the surface of the air electrodes prepared by Zr(4+) doped α-MnO(2) nanowires was the rate-controlling step for ORR. The DFT calculations revealed that the mutual action between Zr(4+) and Mn(3+) in Zr(4+) doped α-MnO(2) nanowires enhanced the adsorption process of O(2) molecules.
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spelling pubmed-90774972022-05-09 Improvement of O(2) adsorption for α-MnO(2) as an oxygen reduction catalyst by Zr(4+) doping Wang, Yicheng Li, Yaozong Lu, Zhenghang Wang, Wei RSC Adv Chemistry Zr(4+) doped α-MnO(2) nanowires were successfully synthesized by a hydrothermal method. XRD, SEM, TEM and XPS analyses indicated that Mn(3+) ions, Mn(4+) ions, Mn(4+δ) ions and Zr(4+) ions co-existed in the crystal structure of synthesized Zr(4+) doped α-MnO(2) nanowires. Zr(4+) ions occupied the positions originally belonging to elemental manganese in the crystal structure and resulted in a mutual action between Zr(4+) ions and Mn(3+) ions. The mutual action made Mn(3+) ions tend to lose their electrons and Zr(4+) ions tend to get electrons. Cathodic polarization analyses showed that the electrocatalytic activity of α-MnO(2) for oxygen reduction reaction (ORR) was remarkably improved by Zr(4+) doping and the Zr/Mn molar ratio notably affected the ORR performance of the air electrodes prepared by Zr(4+) doped α-MnO(2) nanowires. The highest ORR current density of the air electrodes prepared by Zr(4+) doped α-MnO(2) nanowires in alkaline solution appeared at Zr/Mn molar ratio of 1 : 110, which was 23% higher than those prepared by α-MnO(2) nanowires. EIS analyses indicated that the adsorption process of O(2) molecules on the surface of the air electrodes prepared by Zr(4+) doped α-MnO(2) nanowires was the rate-controlling step for ORR. The DFT calculations revealed that the mutual action between Zr(4+) and Mn(3+) in Zr(4+) doped α-MnO(2) nanowires enhanced the adsorption process of O(2) molecules. The Royal Society of Chemistry 2018-01-15 /pmc/articles/PMC9077497/ /pubmed/35541162 http://dx.doi.org/10.1039/c7ra10079e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Wang, Yicheng
Li, Yaozong
Lu, Zhenghang
Wang, Wei
Improvement of O(2) adsorption for α-MnO(2) as an oxygen reduction catalyst by Zr(4+) doping
title Improvement of O(2) adsorption for α-MnO(2) as an oxygen reduction catalyst by Zr(4+) doping
title_full Improvement of O(2) adsorption for α-MnO(2) as an oxygen reduction catalyst by Zr(4+) doping
title_fullStr Improvement of O(2) adsorption for α-MnO(2) as an oxygen reduction catalyst by Zr(4+) doping
title_full_unstemmed Improvement of O(2) adsorption for α-MnO(2) as an oxygen reduction catalyst by Zr(4+) doping
title_short Improvement of O(2) adsorption for α-MnO(2) as an oxygen reduction catalyst by Zr(4+) doping
title_sort improvement of o(2) adsorption for α-mno(2) as an oxygen reduction catalyst by zr(4+) doping
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9077497/
https://www.ncbi.nlm.nih.gov/pubmed/35541162
http://dx.doi.org/10.1039/c7ra10079e
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