NMR-STUDIES OF TONIC MOBILITY AND MOLECULAR MOBILITY IN POLYMER ELECTROLYTES

被引:50
作者
WARD, IM
BODEN, N
CRUICKSHANK, J
LENG, SA
机构
[1] IRC in Polymer Science and Technology, University of Leeds, Leeds
关键词
POLYMER ELECTROLYTE; NMR; ION DIFFUSION; CRITICAL ENTANGLEMENTS; RELAXATION TIMES;
D O I
10.1016/0013-4686(95)00143-3
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
The pulsed field gradient spin echo technique has been used to measure the self-diffusion coefficients of both the cation and anion in LiCF3SO3 PEO(n) systems as a function of concentration and temperature. In addition, the ionic conductivities were determined by ac conductivity measurements. The temperature dependence of both conductivity and ion diffusivities could be very well described by the Vogel-Tamman-Fulcher equation. Predicted values for ionic conductivity were obtained from the NMR diffusivities using the Nernst-Einstein equation and compared with those from direct measurement. It is clear that at higher reduced temperatures and/or lower salt concentrations, there is an increasing degree of ionic association or correlated motions of neighbouring cations and anions which give rise to deviations from the Nernst-Einstein equation. The molecular mobility of the polymer chains in these systems has also been studied by NMR measurements of the proton transverse relaxation behaviour. It has been found that the addition of salt does not affect the critical entanglement molecular weight of the polymer but it does increase the segmental relaxation time. Below the entanglement molecular weight the polymer chain dynamics can be described by the Rouse model. Above the critical entanglement molecular weight, a model due to Brereton can be used, and the NMR data have been shown to be consistent with a constant chain length between entanglements, the relaxation times varying with salt concentration in a manner predicted from the conductance measurements. It is concluded that the dissolved salt increases the energy barriers to polymer segmental motion, but not the entangled structure of the polymer.
引用
收藏
页码:2071 / 2076
页数:6
相关论文
共 18 条
[1]  
Armand M. B., 1979, Fast Ion Transport in Solids. Electrodes and Electrolytes, P131
[2]   CATION AND ANION DIFFUSION IN THE AMORPHOUS PHASE OF THE POLYMER ELECTROLYTE (PEO) 8LICF3SO3 [J].
BHATTACHARJA, S ;
SMOOT, SW ;
WHITMORE, DH .
SOLID STATE IONICS, 1986, 18-9 (pt 1) :306-314
[3]   IONIC-CONDUCTIVITY AND DIFFUSIVITY IN POLYETHYLENE OXIDE ELECTROLYTE-SOLUTIONS AS MODELS FOR POLYMER ELECTROLYTES [J].
BODEN, N ;
LENG, SA ;
WARD, IM .
SOLID STATE IONICS, 1991, 45 (3-4) :261-270
[4]   NATURE OF THE PROTON NMR TRANSVERSE RELAXATION FUNCTION OF POLYETHYLENE MELTS .1. MONODISPERSED POLYETHYLENES [J].
BRERETON, MG ;
WARD, IM ;
BODEN, N ;
WRIGHT, P .
MACROMOLECULES, 1991, 24 (08) :2068-2074
[5]   NMR TRANSVERSE RELAXATION FUNCTION CALCULATED FOR CONSTRAINED POLYMER-CHAINS - APPLICATION TO ENTANGLEMENTS AND NETWORKS [J].
BRERETON, MG .
MACROMOLECULES, 1990, 23 (04) :1119-1131
[6]   TRANSPORT PROPERTIES OF MOLTEN ALKALI-HALIDES [J].
CICCOTTI, G ;
JACUCCI, G ;
MCDONALD, IR .
PHYSICAL REVIEW A, 1976, 13 (01) :426-436
[7]   EFFECTS OF POLYMER-CHAIN DISENTANGLEMENT ON NMR PROPERTIES .2. C-13 MAGNETIC-RELAXATION IN POLYSTYRENE [J].
COHENADDAD, JP ;
FEIO, G .
JOURNAL OF POLYMER SCIENCE PART B-POLYMER PHYSICS, 1984, 22 (06) :957-978
[8]  
CRUICKSHANK JM, 1993, THESIS LEEDS U
[9]   ENTANGLEMENT EFFECTS ON NMR SPIN-SPIN RELAXATION IN POLYETHYLENE MELTS [J].
FOLLAND, R ;
CHARLESBY, A .
JOURNAL OF POLYMER SCIENCE PART C-POLYMER LETTERS, 1978, 16 (07) :339-344
[10]  
HALL PG, 1986, POLYM COMMUN, V27, P100