Ionic conductivity of polymer electrolytes based on phosphate and polyether copolymers

被引:46
作者
Kim, SH [1 ]
Kim, JY
Kim, HS
Cho, HN
机构
[1] Hanyang Univ, Coll Engn, Dept Text Engn, Seoul 133791, South Korea
[2] Korea Inst Sci & Technol, Polymer Mat Lab, Seoul 130650, South Korea
关键词
poly(ethylene glycol); poly(tetramethylene glycol); polyphosphate; ionic conductivity; polymer electrolyte;
D O I
10.1016/S0167-2738(98)00265-3
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 ; 081704 ;
摘要
Linear polyphosphate random copolymers (LPC) composed of phosphate as a linking agent with poly(ethylene glycol) (PEG) and/or poly(tetramethylene glycol) (PTMG) were synthesized to increase local segmental motion for improved ion transport. Ionic conductivity and thermal behavior of LPC series-LiCF3SO3 complexes were investigated with various compositions, salt concentrations and temperatures. The PEG(70)/PTMG(30)/LiCF3SO3 electrolyte exhibited ionic conductivity of 8.04 x 10(-5) S/cm at 25 degrees C. Salt concentration with the highest ionic conductivity was considerably dependent on EO/TMO compositions in LPC series-salt systems. Relationship between solvating ability and chain flexibility with various compositions and salt concentrations was investigated through theoretical aspects of the Adam-Gibbs configurational entropy model. Temperature dependence on the ionic conductivity in LPC6 series-salt systems suggested the ion conduction follows the Williams-Landel-Ferry (WLF) mechanism, which is confirmed by Vogel-Tamman-Fulcher (VTF) plots. The ionic conductivity was affected by segmental motion of the polymer matrix. VTF parameters and apparent activation energy were evaluated by a non-linear least square minimization method. These results suggested that the solvating ability of the host polymer might be a dominant factor to improve the ionic conductivity rather than chain mobility. (C) 1999 Published by Elsevier Science B.V. All rights reserved.
引用
收藏
页码:63 / 71
页数:9
相关论文
共 24 条
[11]  
Nedi R.J., 1991, MODERN BATTERY TECHN
[12]   DESIGN OF ALKALINE METAL-ION CONDUCTING POLYMER ELECTROLYTES [J].
OKAMOTO, Y ;
YEH, TF ;
LEE, HS ;
SKOTHEIM, TA .
JOURNAL OF POLYMER SCIENCE PART A-POLYMER CHEMISTRY, 1993, 31 (10) :2573-2581
[13]   ION-TRANSPORT IN SOLVENT-FREE POLYMERS [J].
RATNER, MA ;
SHRIVER, DF .
CHEMICAL REVIEWS, 1988, 88 (01) :109-124
[14]   Plasticizer interactions with polymer and salt in propylene carbonate-poly(acrylonitrile)-lithium triflate [J].
Starkey, SR ;
Frech, R .
ELECTROCHIMICA ACTA, 1997, 42 (03) :471-474
[15]   POLYMER SOLID ELECTROLYTES FROM THE PEG-PMMA-LICF3SO3 SYSTEM [J].
SUCH, K ;
STEVENS, JR ;
WIECZOREK, W ;
SIEKIERSKI, M ;
FLORJANCZYK, Z .
JOURNAL OF POLYMER SCIENCE PART B-POLYMER PHYSICS, 1994, 32 (13) :2221-2233
[16]   IONIC-CONDUCTION OF CROSS-LINKABLE OLIGO(OXYETHYLENE)-BRANCHED POLY(PHOSPHAZENE) [J].
TADA, Y ;
SATO, M ;
TAKENO, N ;
KAMESHIMA, T ;
NAKACHO, Y ;
SHIGEHARA, K .
MACROMOLECULAR CHEMISTRY AND PHYSICS, 1994, 195 (02) :571-579
[17]  
Takeoka S., 1993, POLYM ADVAN TECHNOL, V4, P53
[18]  
Tonge J.S., 1987, P ELECTROCHEM SOC, V87, P533
[19]  
TONGE JS, 1989, POLYM ELECT APPL
[20]   CONDUCTION OF LITHIUM IONS IN POLYVINYLIDENE FLUORIDE AND ITS DERIVATIVES .1. [J].
TSUCHIDA, E ;
OHNO, H ;
TSUNEMI, K .
ELECTROCHIMICA ACTA, 1983, 28 (05) :591-595