Design and synthesis of metal oxide hollow nanopowders for lithium-ion batteries by combining nanoscale Kirkendall diffusion and flame spray pyrolysis
- Authors
- Won, Jong Min; Kim, Jong Hwa; Choi, Yun Ju; Cho, Jung Sang; Kang, Yun Chan
- Issue Date
- 3월-2016
- Publisher
- ELSEVIER SCI LTD
- Keywords
- Kirkendall diffusion; Nickel oxide; Lithium ion battery; Flame spray pyrolysis
- Citation
- CERAMICS INTERNATIONAL, v.42, no.4, pp.5461 - 5471
- Indexed
- SCIE
SCOPUS
- Journal Title
- CERAMICS INTERNATIONAL
- Volume
- 42
- Number
- 4
- Start Page
- 5461
- End Page
- 5471
- URI
- https://scholar.korea.ac.kr/handle/2021.sw.korea/89375
- DOI
- 10.1016/j.ceramint.2015.12.092
- ISSN
- 0272-8842
- Abstract
- This study introduces an efficient process that combines a gas phase reaction method and nanoscale Kirkendall diffusion for the large-scale production of metal-oxide hollow nanopowders. Core-shell-structured NiO@SiO2 nanopowders prepared by flame spray pyrolysis are transformed into hollow NiO@SiO2 nanopowders via a nanoscale Kirkendall diffusion process. The SiO2 coating layer plays a key role in preventing the sintering and growth of the Ni or NiO nanopowders during the preparation process. The mean size of hollow core and shell thickness of the hollow NiO nanopowders are 11 and 7 nm, respectively. At a current density of 0.5 A g(-1), the NiO@SiO2 nanopowders with hollow and filled structures exhibit 100th cycle discharge capacities of 885 and 338 mA h g(-1), respectively. In addition, the hollow NiO@SiO2 nanopowders, which exhibit low charge transfer resistances and fast Li-ion diffusion rates, also show better cycling and rate performance than the nanopowders with filled structures. (C) 2016 Elsevier Ltd and Techna Group S.r.l. All rights reserved.
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