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Promoting the Performance of Li–CO(2) Batteries via Constructing Three-Dimensional Interconnected K(+) Doped MnO(2) Nanowires Networks

Nowadays, Li–CO(2) batteries have attracted enormous interests due to their high energy density for integrated energy storage and conversion devices, superiorities of capturing and converting CO(2). Nevertheless, the actual application of Li–CO(2) batteries is hindered attributed to excessive overpo...

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Autores principales: Tang, Zhuolin, Yuan, Mengming, Zhu, Huali, Zeng, Guang, Liu, Jun, Duan, Junfei, Chen, Zhaoyong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8082424/
https://www.ncbi.nlm.nih.gov/pubmed/33937205
http://dx.doi.org/10.3389/fchem.2021.670612
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author Tang, Zhuolin
Yuan, Mengming
Zhu, Huali
Zeng, Guang
Liu, Jun
Duan, Junfei
Chen, Zhaoyong
author_facet Tang, Zhuolin
Yuan, Mengming
Zhu, Huali
Zeng, Guang
Liu, Jun
Duan, Junfei
Chen, Zhaoyong
author_sort Tang, Zhuolin
collection PubMed
description Nowadays, Li–CO(2) batteries have attracted enormous interests due to their high energy density for integrated energy storage and conversion devices, superiorities of capturing and converting CO(2). Nevertheless, the actual application of Li–CO(2) batteries is hindered attributed to excessive overpotential and poor lifespan. In the past decades, catalysts have been employed in the Li–CO(2) batteries and been demonstrated to reduce the decomposition potential of the as-formed Li(2)CO(3) during charge process with high efficiency. However, as a representative of promising catalysts, the high costs of noble metals limit the further development, which gives rise to the exploration of catalysts with high efficiency and low cost. In this work, we prepared a K(+) doped MnO(2) nanowires networks with three-dimensional interconnections (3D KMO NWs) catalyst through a simple hydrothermal method. The interconnected 3D nanowires network catalysts could accelerate the Li ions diffusion, CO(2) transfer and the decomposition of discharge products Li(2)CO(3). It is found that high content of K(+) doping can promote the diffusion of ions, electrons and CO(2) in the MnO(2) air cathode, and promote the octahedral effect of MnO(6), stabilize the structure of MnO(2) hosts, and improve the catalytic activity of CO(2). Therefore, it shows a high total discharge capacity of 9,043 mAh g(−1), a low overpotential of 1.25 V, and a longer cycle performance.
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spelling pubmed-80824242021-04-30 Promoting the Performance of Li–CO(2) Batteries via Constructing Three-Dimensional Interconnected K(+) Doped MnO(2) Nanowires Networks Tang, Zhuolin Yuan, Mengming Zhu, Huali Zeng, Guang Liu, Jun Duan, Junfei Chen, Zhaoyong Front Chem Chemistry Nowadays, Li–CO(2) batteries have attracted enormous interests due to their high energy density for integrated energy storage and conversion devices, superiorities of capturing and converting CO(2). Nevertheless, the actual application of Li–CO(2) batteries is hindered attributed to excessive overpotential and poor lifespan. In the past decades, catalysts have been employed in the Li–CO(2) batteries and been demonstrated to reduce the decomposition potential of the as-formed Li(2)CO(3) during charge process with high efficiency. However, as a representative of promising catalysts, the high costs of noble metals limit the further development, which gives rise to the exploration of catalysts with high efficiency and low cost. In this work, we prepared a K(+) doped MnO(2) nanowires networks with three-dimensional interconnections (3D KMO NWs) catalyst through a simple hydrothermal method. The interconnected 3D nanowires network catalysts could accelerate the Li ions diffusion, CO(2) transfer and the decomposition of discharge products Li(2)CO(3). It is found that high content of K(+) doping can promote the diffusion of ions, electrons and CO(2) in the MnO(2) air cathode, and promote the octahedral effect of MnO(6), stabilize the structure of MnO(2) hosts, and improve the catalytic activity of CO(2). Therefore, it shows a high total discharge capacity of 9,043 mAh g(−1), a low overpotential of 1.25 V, and a longer cycle performance. Frontiers Media S.A. 2021-04-15 /pmc/articles/PMC8082424/ /pubmed/33937205 http://dx.doi.org/10.3389/fchem.2021.670612 Text en Copyright © 2021 Tang, Yuan, Zhu, Zeng, Liu, Duan and Chen. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Chemistry
Tang, Zhuolin
Yuan, Mengming
Zhu, Huali
Zeng, Guang
Liu, Jun
Duan, Junfei
Chen, Zhaoyong
Promoting the Performance of Li–CO(2) Batteries via Constructing Three-Dimensional Interconnected K(+) Doped MnO(2) Nanowires Networks
title Promoting the Performance of Li–CO(2) Batteries via Constructing Three-Dimensional Interconnected K(+) Doped MnO(2) Nanowires Networks
title_full Promoting the Performance of Li–CO(2) Batteries via Constructing Three-Dimensional Interconnected K(+) Doped MnO(2) Nanowires Networks
title_fullStr Promoting the Performance of Li–CO(2) Batteries via Constructing Three-Dimensional Interconnected K(+) Doped MnO(2) Nanowires Networks
title_full_unstemmed Promoting the Performance of Li–CO(2) Batteries via Constructing Three-Dimensional Interconnected K(+) Doped MnO(2) Nanowires Networks
title_short Promoting the Performance of Li–CO(2) Batteries via Constructing Three-Dimensional Interconnected K(+) Doped MnO(2) Nanowires Networks
title_sort promoting the performance of li–co(2) batteries via constructing three-dimensional interconnected k(+) doped mno(2) nanowires networks
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8082424/
https://www.ncbi.nlm.nih.gov/pubmed/33937205
http://dx.doi.org/10.3389/fchem.2021.670612
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