Cross-linking effect on thermal, conducting and electrochemical properties of an elastomeric polymer electrolyte

被引:8
作者
Cruz, AT
Silva, GG
De Souza, PP
Matencio, T
Pernaut, JM
De Paoli, MA
机构
[1] Univ Fed Minas Gerais, ICEx, Dept Quim, BR-31270901 Belo Horizonte, MG, Brazil
[2] Univ Estadual Campinas, Inst Quim, BR-13083970 Campinas, SP, Brazil
基金
巴西圣保罗研究基金会;
关键词
polymer electrolyte; poly(ethylene oxide); allyl glycidyl ether; cross-linking; glass transition temperature; ionic conductivity; electrochemical stability;
D O I
10.1016/S0167-2738(03)00034-1
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 [物理化学]; 081704 [应用化学];
摘要
Complexing salts, like lithium perchlorate, form interesting polymer electrolytes with terpolymers containing branched ether derivatives, which can be cross-linked, depending on the allyl glycidyl ether group content. Using thermal and electrochemical techniques, the effect of polymer cross-linking upon the properties of the resulting electrolytes has been estimated. It is shown that increasing the salt concentration intensifies the stiffness of the terpolymer network or the linear/branched one and the glass transition temperature consequently rises. Both electrolyte systems investigated in this work present good thermal stabilities up to 270 degreesC and ionic conductivities of 10(-4) S cm(-1) at 30 degreesC with 8 wt.% of LiClO4. Cross-linking does not severely affect the electrolyte conductivity but very significantly enlarges the electroactivity window (from 3 to 5 V) and improves the mechanical stability. The thermal dependence of the conductivity revealed a particular conduction mechanism attributed to the presence of short mobile chains due to the high polydispersity of the terpolymer. Thermal, electrical and special electrochemical properties suggest the inclusion of this material into the available polymer electrolytes for developing new electrochemical applications. (C) 2003 Elsevier Science B.V. All rights reserved.
引用
收藏
页码:301 / 311
页数:11
相关论文
共 50 条
[1]
ELECTROCHEMICAL-BEHAVIOR OF LITHIUM ELECTROLYTES BASED ON NEW POLYETHER NETWORKS [J].
ALLOIN, F ;
SANCHEZ, JY ;
ARMAND, M .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1994, 141 (07) :1915-1920
[2]
Polymer electrolyte structure and its implications [J].
Andreev, YG ;
Bruce, PG .
ELECTROCHIMICA ACTA, 2000, 45 (8-9) :1417-1423
[3]
THE HISTORY OF POLYMER ELECTROLYTES [J].
ARMAND, M .
SOLID STATE IONICS, 1994, 69 (3-4) :309-319
[4]
POLYMERS WITH IONIC-CONDUCTIVITY [J].
ARMAND, M .
ADVANCED MATERIALS, 1990, 2 (6-7) :278-286
[5]
Armand M. B., 1979, Fast Ion Transport in Solids. Electrodes and Electrolytes, P131
[6]
MICROSCOPIC INVESTIGATION OF IONIC-CONDUCTIVITY IN ALKALI-METAL SALTS POLY(ETHYLENE OXIDE) ADDUCTS [J].
BERTHIER, C ;
GORECKI, W ;
MINIER, M ;
ARMAND, MB ;
CHABAGNO, JM ;
RIGAUD, P .
SOLID STATE IONICS, 1983, 11 (01) :91-95
[7]
SOLVATION EFFECT UPON GLASS-TRANSITION TEMPERATURE AND CONDUCTIVITY OF POLY(ETHYLENE OXIDE) COMPLEXED WITH ALKALI THIOCYANATES [J].
BESNER, S ;
PRUDHOMME, J .
MACROMOLECULES, 1989, 22 (07) :3029-3037
[8]
Ionic interactions and transport in a low-molecular-weight model polymer electrolyte [J].
Ferry, A ;
Orädd, G ;
Jacobsson, P .
JOURNAL OF CHEMICAL PHYSICS, 1998, 108 (17) :7426-7433
[9]
Temperature modulated calorimetry of glassy polymers and polymer blends [J].
Flikkema, E ;
van Ekenstein, GA ;
ten Brinke, G .
MACROMOLECULES, 1998, 31 (03) :892-898
[10]
Structure of an amorphous polymer electrolyte, poly(ethylene oxide)(3): LiCF3SO3 [J].
Frech, R ;
Chintapalli, S ;
Bruce, PG ;
Vincent, CA .
CHEMICAL COMMUNICATIONS, 1997, (02) :157-158