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Precisely synthesized LiF-tipped CoF(2)-nanorod heterostructures improve energy storage capacities

CoF(2), with a relatively high theoretical capacity (553 mA h g(−1)), has been attracting increasing attention in the energy storage field. However, a facile and controllable synthesis of monodispersed CoF(2) and CoF(2)-based nano-heterostructures have been rarely reported. In this direction, an eco...

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Autores principales: Wang, Siyuan, Fu, Hao, Ma, Jiamin, Shi, Xiaomeng, Wang, Huimin, Yin, Zongyou, Zhang, Shuai, Jin, Mengdie, Zhong, Ziyun, Zhai, Xinyun, Du, Yaping
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9629014/
https://www.ncbi.nlm.nih.gov/pubmed/36382279
http://dx.doi.org/10.1039/d2sc04008e
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author Wang, Siyuan
Fu, Hao
Ma, Jiamin
Shi, Xiaomeng
Wang, Huimin
Yin, Zongyou
Zhang, Shuai
Jin, Mengdie
Zhong, Ziyun
Zhai, Xinyun
Du, Yaping
author_facet Wang, Siyuan
Fu, Hao
Ma, Jiamin
Shi, Xiaomeng
Wang, Huimin
Yin, Zongyou
Zhang, Shuai
Jin, Mengdie
Zhong, Ziyun
Zhai, Xinyun
Du, Yaping
author_sort Wang, Siyuan
collection PubMed
description CoF(2), with a relatively high theoretical capacity (553 mA h g(−1)), has been attracting increasing attention in the energy storage field. However, a facile and controllable synthesis of monodispersed CoF(2) and CoF(2)-based nano-heterostructures have been rarely reported. In this direction, an eco-friendly and precisely controlled colloidal synthesis strategy to grow uniformly sized CoF(2) nanorods and LiF-tipped CoF(2)-nanorod heterostructures based on a seeded-growth method is established. The unveiled selective growth of LiF nanoparticles onto the two end tips of the CoF(2) nanorods is associated with the higher energy of tips, which favors the nucleation of LiF nanocrystals. Notably, it was found that LiF could protect CoF(2) from corrosion even after 9 months of aging. In addition, the as-obtained heterostructures were employed in supercapacitors and lithium sulfur batteries as cathode materials. The heterostructures consistently exhibited higher specific capacities than the corresponding two single components in both types of energy storage devices, making it a potential electrode material for energy storage applications.
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spelling pubmed-96290142022-11-14 Precisely synthesized LiF-tipped CoF(2)-nanorod heterostructures improve energy storage capacities Wang, Siyuan Fu, Hao Ma, Jiamin Shi, Xiaomeng Wang, Huimin Yin, Zongyou Zhang, Shuai Jin, Mengdie Zhong, Ziyun Zhai, Xinyun Du, Yaping Chem Sci Chemistry CoF(2), with a relatively high theoretical capacity (553 mA h g(−1)), has been attracting increasing attention in the energy storage field. However, a facile and controllable synthesis of monodispersed CoF(2) and CoF(2)-based nano-heterostructures have been rarely reported. In this direction, an eco-friendly and precisely controlled colloidal synthesis strategy to grow uniformly sized CoF(2) nanorods and LiF-tipped CoF(2)-nanorod heterostructures based on a seeded-growth method is established. The unveiled selective growth of LiF nanoparticles onto the two end tips of the CoF(2) nanorods is associated with the higher energy of tips, which favors the nucleation of LiF nanocrystals. Notably, it was found that LiF could protect CoF(2) from corrosion even after 9 months of aging. In addition, the as-obtained heterostructures were employed in supercapacitors and lithium sulfur batteries as cathode materials. The heterostructures consistently exhibited higher specific capacities than the corresponding two single components in both types of energy storage devices, making it a potential electrode material for energy storage applications. The Royal Society of Chemistry 2022-10-07 /pmc/articles/PMC9629014/ /pubmed/36382279 http://dx.doi.org/10.1039/d2sc04008e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Wang, Siyuan
Fu, Hao
Ma, Jiamin
Shi, Xiaomeng
Wang, Huimin
Yin, Zongyou
Zhang, Shuai
Jin, Mengdie
Zhong, Ziyun
Zhai, Xinyun
Du, Yaping
Precisely synthesized LiF-tipped CoF(2)-nanorod heterostructures improve energy storage capacities
title Precisely synthesized LiF-tipped CoF(2)-nanorod heterostructures improve energy storage capacities
title_full Precisely synthesized LiF-tipped CoF(2)-nanorod heterostructures improve energy storage capacities
title_fullStr Precisely synthesized LiF-tipped CoF(2)-nanorod heterostructures improve energy storage capacities
title_full_unstemmed Precisely synthesized LiF-tipped CoF(2)-nanorod heterostructures improve energy storage capacities
title_short Precisely synthesized LiF-tipped CoF(2)-nanorod heterostructures improve energy storage capacities
title_sort precisely synthesized lif-tipped cof(2)-nanorod heterostructures improve energy storage capacities
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9629014/
https://www.ncbi.nlm.nih.gov/pubmed/36382279
http://dx.doi.org/10.1039/d2sc04008e
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