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A novel room temperature POSS ionic liquid-based solid polymer electrolyte

delete2018-02-20
delete45
PRE
AI
J
Jifang Fu
Q
Qi Lu
D
Dapeng Shang
L
Liya Chen
Y
Yong Jiang
Y
Yufeng Xu
J
Jintao Yin
X
Xing Dong
W
Wei Deng
袁帅 cover
袁帅 (Shuai Yuan) *
DOI:10.1007/s10853-018-2135-5delete
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Abstract

Abstract

En 中文
Ionic liquids-based solid polymer electrolytes enhance the battery's overall performance without drawbacks in safety compared with conventional electrolyte. In order to develop a novel solid electrolyte, we synthesized a series of novel room temperature imidazolium-based polyhedral oligomeric silsesquioxane ionic liquids (POSS-ILs) consisting of POSS-COO- anions and a variety of imidazolium cations, which will be used as plasticizers of solid polymer electrolyte in this work. The thermal stabilities of POSS-ILs have been dramatically enhanced by the introduction of POSS moiety, and the initial decomposition temperatures of POSS-ILs have increased by at least 94 A degrees C compared to their corresponded succinamic acid ionic liquids. The glass transition temperatures of POSS-ILs also have increased to - 15.9 to - 25.4 A degrees C. Then the POSS-ILs are employed to obtain a novel solid polymer electrolyte based on blend of polyethylene oxide, poly(vinylidene fluoride-hexafluoropropylene), propylene carbonate and lithium bis(trifluoromethanesulfonyl) imide with high ionic conductivity and electrochemical windows. The ionic conductivities of POSS-ILs-based solid polymer electrolytes are up to 8.0 x 10(-4) S cm(-1) at 22 A degrees C and 2.0 x 10(-3) S cm(-1) at 62 A degrees C, and the electrochemical windows of POSS-ILs-based solid polymer electrolytes are stable up to 5.0 V. Moreover, the Li/LiFePO4 cell containing POSS-ILs-based solid polymer electrolytes exhibits good cycling performance and high rate stability. These results suggest that the POSS-ILs-based solid polymer electrolytes could be a suitable prospective electrolyte material for lithium-ion battery applications.
Keywords:
SENSITIZED SOLAR-CELLS
CARBON NANOTUBE
GRAPHENE
CONDUCTIVITY
STABILITY
SUPERCAPACITOR
NANOPARTICLES
EFFICIENCY
CONVERSION
DIFFUSION
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Journal

Journal of Materials Science cover
Journal of Materials Science
IF:
3.9
Papers:
3.2W
Citations:
7.2W

Organization

S
shanghai university
Scholars:
3.9W
Papers: 2.7W
Citations: 52