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Division of Energy & Environmental Technology
1. Journal Articles
Enhanced cycle stability of polypyrrole-derived nitrogen -doped carbon-coated tin oxide hollow nanofibers for lithium battery anodes
Pham-Cong, De
;
Park, Jung Soo
;
Kim, Jae Hyun
;
Kim, Jinwoo
;
Braun, Paul V.
;
Choi, Jun Hee
;
Kim, Su Jae
;
Jeong, Se Young
;
Cho, Chae Ryong
Division of Energy & Environmental Technology
1. Journal Articles
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Title
Enhanced cycle stability of polypyrrole-derived nitrogen -doped carbon-coated tin oxide hollow nanofibers for lithium battery anodes
Issued Date
2017-01
Citation
Carbon, v.111, pp.28 - 37
Type
Article
Keywords
Anodes
;
Composite Architectures
;
Doping (Additives)
;
Electric Batteries
;
Electrochemical Performance
;
Electrode Material
;
Electrodes
;
Encapsulation
;
GRAPHENE SHEETS
;
HIGH-CAPACITY
;
High-Performance Lithium-Ion Batteries
;
Hollow Nanofibers
;
Li-Ion Batteries
;
Lithium-Ion Batteries
;
Lithium Alloys
;
Lithium Battery Anode
;
Lithium Compounds
;
Nanofibers
;
NANOPARTICLES
;
NANOSHEETS
;
Nitrogen
;
Nitrogen-Doped Carbons
;
Nitrogen Atmospheres
;
Polypyrroles
;
Reversible Capacity
;
SNO2 NANOCRYSTALS
;
STORAGE
;
SUPERCAPACITORS
;
Tin Oxides
ISSN
0008-6223
Abstract
SnO2 hollow nanofibers (SnO2 hNFs) are prepared through electrospinning and annealing processes. The polypyrrole layers coated onto the surface of the SnO2 hNFs are annealed in a nitrogen atmosphere. The nitrogen-doped carbon-coated SnO2 hNFs (SnO2/NC hNFs) are composed of SnO2 hNFs with a wall thickness of 60–80nm and a nitrogen-doped carbon layer ∼10nm thick. The nitrogen content in the carbon layer is approximately 7.95%. Owing to the nitrogen-doped carbon shell layers, the specific reversible capacity of SnO2/NC hNFs at a current density of 0.2Ag−1 after 100 cycles is 1648mAhg−1, which is 427% higher than that of (386mAhg−1) SnO2 hNFs. This strategy may open new avenues for the design of other composite architectures as electrode materials in order to achieve high-performance lithium ion batteries. © 2016 Elsevier Ltd
URI
http://hdl.handle.net/20.500.11750/2061
DOI
10.1016/j.carbon.2016.09.057
Publisher
Elsevier
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