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Manganese vacancies and tunnel pillars synergistically improve the electrochemical performance of MnO(2) in aqueous Zn ion batteries

High-oxidation niobium was used for the first time in manganese dioxide cation doping to reduce the diffusion resistance of zinc ions, in order to improve its kinetic and electrochemical properties. The results show that using a simple hydrothermal process, all niobium ions were doped into the manga...

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Autores principales: Huang, Lanxiang, Chen, Yilin, Deng, Pu, Zhao, Bo, Luo, Xufeng, Chen, Chang, Hu, Yu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10580022/
https://www.ncbi.nlm.nih.gov/pubmed/37854487
http://dx.doi.org/10.1039/d3ra05074b
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author Huang, Lanxiang
Chen, Yilin
Deng, Pu
Zhao, Bo
Luo, Xufeng
Chen, Chang
Hu, Yu
author_facet Huang, Lanxiang
Chen, Yilin
Deng, Pu
Zhao, Bo
Luo, Xufeng
Chen, Chang
Hu, Yu
author_sort Huang, Lanxiang
collection PubMed
description High-oxidation niobium was used for the first time in manganese dioxide cation doping to reduce the diffusion resistance of zinc ions, in order to improve its kinetic and electrochemical properties. The results show that using a simple hydrothermal process, all niobium ions were doped into the manganese dioxide lattice. As niobium(v) was incorporated into the [2 × 2] tunnel of α-MnO(2), it induced manganese vacancies, which reduced the diffusion resistance of Zn(2+) in manganese dioxide, improving the migration kinetics. It acted as a tunnel pillar, avoiding the collapse of the tunnel structure during the repeated insertion/extraction of the Zn(2+) process, and prevented a rapid degradation of the cycling performance. In particular, the sample with the Nb/Mn molar ratio of 0.003 exhibited the best kinetic reversibility and rate performance. After 400 cycles at 1C, the capacity retention of Nb-doped MnO(2) significantly increased to 89%, which was only 55% for the undoped sample. Meanwhile, at a power density of 400 W kg(−1), it presented the highest energy density of 765 W h kg(−1) due to the existing doping of metal ions.
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spelling pubmed-105800222023-10-18 Manganese vacancies and tunnel pillars synergistically improve the electrochemical performance of MnO(2) in aqueous Zn ion batteries Huang, Lanxiang Chen, Yilin Deng, Pu Zhao, Bo Luo, Xufeng Chen, Chang Hu, Yu RSC Adv Chemistry High-oxidation niobium was used for the first time in manganese dioxide cation doping to reduce the diffusion resistance of zinc ions, in order to improve its kinetic and electrochemical properties. The results show that using a simple hydrothermal process, all niobium ions were doped into the manganese dioxide lattice. As niobium(v) was incorporated into the [2 × 2] tunnel of α-MnO(2), it induced manganese vacancies, which reduced the diffusion resistance of Zn(2+) in manganese dioxide, improving the migration kinetics. It acted as a tunnel pillar, avoiding the collapse of the tunnel structure during the repeated insertion/extraction of the Zn(2+) process, and prevented a rapid degradation of the cycling performance. In particular, the sample with the Nb/Mn molar ratio of 0.003 exhibited the best kinetic reversibility and rate performance. After 400 cycles at 1C, the capacity retention of Nb-doped MnO(2) significantly increased to 89%, which was only 55% for the undoped sample. Meanwhile, at a power density of 400 W kg(−1), it presented the highest energy density of 765 W h kg(−1) due to the existing doping of metal ions. The Royal Society of Chemistry 2023-10-17 /pmc/articles/PMC10580022/ /pubmed/37854487 http://dx.doi.org/10.1039/d3ra05074b Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Huang, Lanxiang
Chen, Yilin
Deng, Pu
Zhao, Bo
Luo, Xufeng
Chen, Chang
Hu, Yu
Manganese vacancies and tunnel pillars synergistically improve the electrochemical performance of MnO(2) in aqueous Zn ion batteries
title Manganese vacancies and tunnel pillars synergistically improve the electrochemical performance of MnO(2) in aqueous Zn ion batteries
title_full Manganese vacancies and tunnel pillars synergistically improve the electrochemical performance of MnO(2) in aqueous Zn ion batteries
title_fullStr Manganese vacancies and tunnel pillars synergistically improve the electrochemical performance of MnO(2) in aqueous Zn ion batteries
title_full_unstemmed Manganese vacancies and tunnel pillars synergistically improve the electrochemical performance of MnO(2) in aqueous Zn ion batteries
title_short Manganese vacancies and tunnel pillars synergistically improve the electrochemical performance of MnO(2) in aqueous Zn ion batteries
title_sort manganese vacancies and tunnel pillars synergistically improve the electrochemical performance of mno(2) in aqueous zn ion batteries
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10580022/
https://www.ncbi.nlm.nih.gov/pubmed/37854487
http://dx.doi.org/10.1039/d3ra05074b
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