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Porous nitrogen-doped graphene nanofibers comprising metal organic framework-derived hollow and ultrafine layered double metal oxide nanocrystals as high-performance anodes for lithium-ion batteries

Authors
Kim, Chan SicLee, Jae SeobSaroha, RakeshPark, Yoon BeomKang, Yun ChanKang, Dong-WonJeong, Sang MunCho, Jung Sang
Issue Date
1-3월-2022
Publisher
ELSEVIER
Keywords
Lithium ion batteries; Anode materials; Electrospinning; Metal-organic framework; Layered double metal oxide
Citation
JOURNAL OF POWER SOURCES, v.523
Indexed
SCIE
SCOPUS
Journal Title
JOURNAL OF POWER SOURCES
Volume
523
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/140842
DOI
10.1016/j.jpowsour.2022.231030
ISSN
0378-7753
Abstract
The growth of unique nanostructures with multicomponent systems is a renowned strategy for developing advanced materials for various energy storage applications. Herein, we utilize a facile approach to synthesize multicomponent high-performance nanofibers as anodes that comprises hierarchically porous and self-supporting N-doped reduced graphene oxide (N-doped rGO) matrix grafted with metal-organic framework (MOF)-derived hollow and ultrafine layered double metal (Ni and Co) oxide (LDO) nanocrystals [P-(Ni, Co)O/rGO NFs]. The porous and highly conductive N-doped rGO scaffold not only provides structural integrity but also offers short Li-ion diffusion pathways along with enormous conductive channels for rapid charge transfer during cycling. The hollow and ultrafine LDO nanocrystals also provide sufficient space for rapid reaction sites and to absorb the severe volume stress generated during repeated charge-discharge cycles owing to their rich oxidation states. The Li-cell utilizing the P-(Ni, Co)O/rGO NFs as anodes exhibits overall enhanced electrochemical performance with prolonged cycling stability (907 mA h g(-1) at the end of 500th cycle) and a satisfactory high-rate capability (519 mA h g(-1) at 5.0 A g(-1)).
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