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Cited 5 time in webofscience Cited 7 time in scopus
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Cu-SnO2 nanostructures obtained via galvanic replacement control as high performance anodes for lithium-ion storage

Authors
Tuan Loi NguyenPark, DuckshinHur, JaehyunSon, Hyung BinPark, Min SangLee, Seung GeolKim, Ji HyeonKim, Il Tae
Issue Date
Jan-2018
Publisher
ELSEVIER SCIENCE BV
Keywords
Lithium-ion batteries; Tin dioxide nanoparticles; Copper; Composite anodes; Galvanic replacement reaction
Citation
APPLIED SURFACE SCIENCE, v.429, pp 218 - 224
Pages
7
Journal Title
APPLIED SURFACE SCIENCE
Volume
429
Start Page
218
End Page
224
URI
https://scholarworks.bwise.kr/cau/handle/2019.sw.cau/1291
DOI
10.1016/j.apsusc.2017.05.092
ISSN
0169-4332
1873-5584
Abstract
SnO2 has been considered as a promising anode material for lithium ion batteries (LIBs) because of its high theoretical capacity (782 mAh g(-1)). However, the reaction between lithium ions and Sn causes a large volume change, resulting in the pulverization of the anode, a loss of contact with the current collector, and a deterioration in electrochemical performance. Several strategies have been proposed to mitigate the drastic volume changes to extend the cyclic life of SnO2 materials. Herein, novel composites consisting of Cu and SnO2 were developed via the galvanic replacement reaction. The reaction was carried out at 180 degrees C for different durations and triethylene glycol was used as the medium solvent. The structure, morphology, and composition of the composites were analyzed by X-ray diffraction, transmission electron microscopy, and energy dispersive X-ray spectroscopy. The reaction time affected the particle size, which in turn affected the reaction kinetics. Furthermore, the novel nanostructures contained an inactive metal phase (Cu), which acted both as the buffer space against the volume change of Sn during the alloying reaction and as the electron conductor, resulting in a lower impedance of the composites. When evaluated as potential anodes for LIBs, the composite electrodes displayed extraordinary electrochemical performance with a high capacity and Coulombic efficiency, an excellent cycling stability, and a superior rate capability compared to a Sn electrode. (C) 2017 Elsevier B.V. All rights reserved.
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