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Structural and defect engineering of cobaltosic oxide nanoarchitectures as an ultrahigh energy density and super durable cathode for Zn-based batteries

The key challenges of aqueous Zn-based batteries (ZBBs) are their unsatisfactory energy density and poor lifespan, mainly arising from the low capacity and irreversibility of the cathode materials. Herein, a three-dimensional (3D) ordered mesoporous nanoarchitecture cobaltosic oxide (M-Co(3)O(4)) wi...

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Autores principales: Teng, Chunlin, Yang, Fan, Sun, Minghui, Yin, Keshu, Huang, Qintong, Fu, Guangying, Zhang, Chuanqi, Lu, Xihong, Jiang, Jiuxing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6761872/
https://www.ncbi.nlm.nih.gov/pubmed/31588311
http://dx.doi.org/10.1039/c9sc01902b
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author Teng, Chunlin
Yang, Fan
Sun, Minghui
Yin, Keshu
Huang, Qintong
Fu, Guangying
Zhang, Chuanqi
Lu, Xihong
Jiang, Jiuxing
author_facet Teng, Chunlin
Yang, Fan
Sun, Minghui
Yin, Keshu
Huang, Qintong
Fu, Guangying
Zhang, Chuanqi
Lu, Xihong
Jiang, Jiuxing
author_sort Teng, Chunlin
collection PubMed
description The key challenges of aqueous Zn-based batteries (ZBBs) are their unsatisfactory energy density and poor lifespan, mainly arising from the low capacity and irreversibility of the cathode materials. Herein, a three-dimensional (3D) ordered mesoporous nanoarchitecture cobaltosic oxide (M-Co(3)O(4)) with rich oxygen vacancies (M-Co(3)O(4–x)) is reported as a new promising advanced cathode material for rechargeable ZBBs. The experimental results and DFT calculations reveal that the energy storage capacity is significantly enhanced by the synergistic effect of mesopores and oxygen vacancies. Benefiting from the merits of a substantially fast ion diffusion channel, high electrical conductivity, large active surface area, strong OH(–) adsorption capacity and stable structure, the fabricated M-Co(3)O(4–x)//Zn battery delivers a remarkable capacity of 384 mA h g(–1) at 1.0 A g(–1) which even rises up to 420 mA h g(–1) after cycling activation with an ultrahigh energy density of 722.4 W h kg(–1) (based on the weights of the cathode active material), which outperforms most of the previously reported aqueous ZBBs. More impressively, the M-Co(3)O(4–x)//Zn battery exhibits extraordinary cycling stability, both at 1 A g(–1) and 10 A g(–1) without any decay of capacity after 6000 and 60 000 cycles, respectively, and such high cycling stability is reported for the first time in ZBBs. The ultrahigh energy and superlong lifespan of aqueous ZBBs could make it satisfy some practical energy demands.
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spelling pubmed-67618722019-10-04 Structural and defect engineering of cobaltosic oxide nanoarchitectures as an ultrahigh energy density and super durable cathode for Zn-based batteries Teng, Chunlin Yang, Fan Sun, Minghui Yin, Keshu Huang, Qintong Fu, Guangying Zhang, Chuanqi Lu, Xihong Jiang, Jiuxing Chem Sci Chemistry The key challenges of aqueous Zn-based batteries (ZBBs) are their unsatisfactory energy density and poor lifespan, mainly arising from the low capacity and irreversibility of the cathode materials. Herein, a three-dimensional (3D) ordered mesoporous nanoarchitecture cobaltosic oxide (M-Co(3)O(4)) with rich oxygen vacancies (M-Co(3)O(4–x)) is reported as a new promising advanced cathode material for rechargeable ZBBs. The experimental results and DFT calculations reveal that the energy storage capacity is significantly enhanced by the synergistic effect of mesopores and oxygen vacancies. Benefiting from the merits of a substantially fast ion diffusion channel, high electrical conductivity, large active surface area, strong OH(–) adsorption capacity and stable structure, the fabricated M-Co(3)O(4–x)//Zn battery delivers a remarkable capacity of 384 mA h g(–1) at 1.0 A g(–1) which even rises up to 420 mA h g(–1) after cycling activation with an ultrahigh energy density of 722.4 W h kg(–1) (based on the weights of the cathode active material), which outperforms most of the previously reported aqueous ZBBs. More impressively, the M-Co(3)O(4–x)//Zn battery exhibits extraordinary cycling stability, both at 1 A g(–1) and 10 A g(–1) without any decay of capacity after 6000 and 60 000 cycles, respectively, and such high cycling stability is reported for the first time in ZBBs. The ultrahigh energy and superlong lifespan of aqueous ZBBs could make it satisfy some practical energy demands. Royal Society of Chemistry 2019-06-24 /pmc/articles/PMC6761872/ /pubmed/31588311 http://dx.doi.org/10.1039/c9sc01902b Text en This journal is © The Royal Society of Chemistry 2019 http://creativecommons.org/licenses/by-nc/3.0/ This article is freely available. This article is licensed under a Creative Commons Attribution Non Commercial 3.0 Unported Licence (CC BY-NC 3.0)
spellingShingle Chemistry
Teng, Chunlin
Yang, Fan
Sun, Minghui
Yin, Keshu
Huang, Qintong
Fu, Guangying
Zhang, Chuanqi
Lu, Xihong
Jiang, Jiuxing
Structural and defect engineering of cobaltosic oxide nanoarchitectures as an ultrahigh energy density and super durable cathode for Zn-based batteries
title Structural and defect engineering of cobaltosic oxide nanoarchitectures as an ultrahigh energy density and super durable cathode for Zn-based batteries
title_full Structural and defect engineering of cobaltosic oxide nanoarchitectures as an ultrahigh energy density and super durable cathode for Zn-based batteries
title_fullStr Structural and defect engineering of cobaltosic oxide nanoarchitectures as an ultrahigh energy density and super durable cathode for Zn-based batteries
title_full_unstemmed Structural and defect engineering of cobaltosic oxide nanoarchitectures as an ultrahigh energy density and super durable cathode for Zn-based batteries
title_short Structural and defect engineering of cobaltosic oxide nanoarchitectures as an ultrahigh energy density and super durable cathode for Zn-based batteries
title_sort structural and defect engineering of cobaltosic oxide nanoarchitectures as an ultrahigh energy density and super durable cathode for zn-based batteries
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6761872/
https://www.ncbi.nlm.nih.gov/pubmed/31588311
http://dx.doi.org/10.1039/c9sc01902b
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