1D to 3D hierarchical iron selenide hollow nanocubes assembled from FeSe2@C core-shell nanorods for advanced sodium ion batteries

3D hierarchical hollow nanocubes constructed by 1D FeSe2@C core-shell nanorods were successfully prepared by a thermally-induced selenization process of their Prussian blue microcubes precursor. Such novel nanorods-based FeSe2@C hollow structures exhibit high conductivity and special structural prop...

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Main Authors: Fan, Haosen, Yu, Hong, Zhang, Yufei, Guo, Jing, Wang, Zhen, Wang, Hao, Zhao, Ning, Zheng, Yun, Du, Chengfeng, Dai, Zhengfei, Yan, Qingyu, Xu, Jian
Other Authors: School of Materials Science and Engineering
Format: Article
Language:English
Published: 2020
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Online Access:https://hdl.handle.net/10356/139179
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1391792021-01-13T08:46:22Z 1D to 3D hierarchical iron selenide hollow nanocubes assembled from FeSe2@C core-shell nanorods for advanced sodium ion batteries Fan, Haosen Yu, Hong Zhang, Yufei Guo, Jing Wang, Zhen Wang, Hao Zhao, Ning Zheng, Yun Du, Chengfeng Dai, Zhengfei Yan, Qingyu Xu, Jian School of Materials Science and Engineering Engineering::Materials Hierarchical Nanocubes FeSe2@C 3D hierarchical hollow nanocubes constructed by 1D FeSe2@C core-shell nanorods were successfully prepared by a thermally-induced selenization process of their Prussian blue microcubes precursor. Such novel nanorods-based FeSe2@C hollow structures exhibit high conductivity and special structural property which provide good charge transport kinetics by facilitating the charge transfer into the inner of FeSe2 nanorods. When used as anode materials for sodium ion batteries, the hierarchically hollow nanocubes showed excellent rate performance and ultra-stable long-term cycling stability at a high current density of 10 A g−1, suggesting a good sodium-ion storage material. This simple solid-phase process demonstrated in this work can be further used for the preparation of other metal selenide with unique and fascinating structure for the potential applications in the energy storage field. ASTAR (Agency for Sci., Tech. and Research, S’pore) MOE (Min. of Education, S’pore) 2020-05-18T01:26:30Z 2020-05-18T01:26:30Z 2017 Journal Article Fan, H., Yu, H., Zhang, Y., Guo, J., Wang, Z., Wang, H., . . . Xu, J. (2018). 1D to 3D hierarchical iron selenide hollow nanocubes assembled from FeSe2@C core-shell nanorods for advanced sodium ion batteries. Energy Storage Materials, 10, 48-55. doi:10.1016/j.ensm.2017.08.006 2405-8297 https://hdl.handle.net/10356/139179 10.1016/j.ensm.2017.08.006 2-s2.0-85027841376 10 48 55 en Energy Storage Materials © 2017 Elsevier B.V. All rights reserved.
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering::Materials
Hierarchical Nanocubes
FeSe2@C
spellingShingle Engineering::Materials
Hierarchical Nanocubes
FeSe2@C
Fan, Haosen
Yu, Hong
Zhang, Yufei
Guo, Jing
Wang, Zhen
Wang, Hao
Zhao, Ning
Zheng, Yun
Du, Chengfeng
Dai, Zhengfei
Yan, Qingyu
Xu, Jian
1D to 3D hierarchical iron selenide hollow nanocubes assembled from FeSe2@C core-shell nanorods for advanced sodium ion batteries
description 3D hierarchical hollow nanocubes constructed by 1D FeSe2@C core-shell nanorods were successfully prepared by a thermally-induced selenization process of their Prussian blue microcubes precursor. Such novel nanorods-based FeSe2@C hollow structures exhibit high conductivity and special structural property which provide good charge transport kinetics by facilitating the charge transfer into the inner of FeSe2 nanorods. When used as anode materials for sodium ion batteries, the hierarchically hollow nanocubes showed excellent rate performance and ultra-stable long-term cycling stability at a high current density of 10 A g−1, suggesting a good sodium-ion storage material. This simple solid-phase process demonstrated in this work can be further used for the preparation of other metal selenide with unique and fascinating structure for the potential applications in the energy storage field.
author2 School of Materials Science and Engineering
author_facet School of Materials Science and Engineering
Fan, Haosen
Yu, Hong
Zhang, Yufei
Guo, Jing
Wang, Zhen
Wang, Hao
Zhao, Ning
Zheng, Yun
Du, Chengfeng
Dai, Zhengfei
Yan, Qingyu
Xu, Jian
format Article
author Fan, Haosen
Yu, Hong
Zhang, Yufei
Guo, Jing
Wang, Zhen
Wang, Hao
Zhao, Ning
Zheng, Yun
Du, Chengfeng
Dai, Zhengfei
Yan, Qingyu
Xu, Jian
author_sort Fan, Haosen
title 1D to 3D hierarchical iron selenide hollow nanocubes assembled from FeSe2@C core-shell nanorods for advanced sodium ion batteries
title_short 1D to 3D hierarchical iron selenide hollow nanocubes assembled from FeSe2@C core-shell nanorods for advanced sodium ion batteries
title_full 1D to 3D hierarchical iron selenide hollow nanocubes assembled from FeSe2@C core-shell nanorods for advanced sodium ion batteries
title_fullStr 1D to 3D hierarchical iron selenide hollow nanocubes assembled from FeSe2@C core-shell nanorods for advanced sodium ion batteries
title_full_unstemmed 1D to 3D hierarchical iron selenide hollow nanocubes assembled from FeSe2@C core-shell nanorods for advanced sodium ion batteries
title_sort 1d to 3d hierarchical iron selenide hollow nanocubes assembled from fese2@c core-shell nanorods for advanced sodium ion batteries
publishDate 2020
url https://hdl.handle.net/10356/139179
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