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Controlling the Voltage Window for Improved Cycling Performance of SnO2 as Anode Material for Lithium-Ion Batteries

Authors
Heo, JungwonHaridas, Anupriya K.Li, XueyingSaroha, RakeshLee, YounkiLim, Du-HyunCho, Kwon-KooAhn, Jou-Hyeon
Issue Date
Nov-2020
Publisher
AMER SCIENTIFIC PUBLISHERS
Keywords
SnO2; Anode Material; Lithium-Ion Battery; Cycle Voltage Window
Citation
JOURNAL OF NANOSCIENCE AND NANOTECHNOLOGY, v.20, no.11, pp.7051 - 7056
Indexed
SCIE
Journal Title
JOURNAL OF NANOSCIENCE AND NANOTECHNOLOGY
Volume
20
Number
11
Start Page
7051
End Page
7056
URI
https://scholarworks.bwise.kr/gnu/handle/sw.gnu/6018
DOI
10.1166/jnn.2020.18834
ISSN
1533-4880
Abstract
Transition metal oxide materials with high theoretical capacities have been studied as substitutes for commercial graphite in lithium-ion batteries. Among these, SnO2 is a promising alloying reaction-based anode material. However, the problem of rapid capacity fading in SnO2 due to volume variation during the alloying/dealloying processes must be solved. The lithiation of SnO2 results in the formation of a Li2O matrix. Herein, the volume variation of SnO2 was suppressed by controlling the voltage window to 1 V to prevent the delithiation reaction between Li2O and Sn. Using this strategy, the unreacted Li2O matrix was enriched with metallic Sn particles, thereby providing a pathway for lithium ions. The specific capacity decay in the voltage window of 0.05-3 V was 1.8% per cycle. However, the specific capacity decay was improved to 0.04% per cycle after the voltage window was restricted (in the range of 0.05-1 V). This strategy resulted in a specific capacity of 374.7 mAh g(-1) at 0.1 C after 40 cycles for the SnO2 anode.
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나노신소재융합공학과
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