Trapping model for the non-Arrhenius ionic conductivity in fast ion-conducting glasses

被引:15
作者
Martin, SW [1 ]
Martin, DM [1 ]
Schrooten, J [1 ]
Meyer, BM [1 ]
机构
[1] Iowa State Univ Sci & Technol, Dept Mat Sci & Engn, Ames, IA 50011 USA
关键词
D O I
10.1088/0953-8984/15/16/312
中图分类号
O469 [凝聚态物理学];
学科分类号
070205 ;
摘要
A new model is proposed to describe the non-Arrhenius conductivity observed in a series of optimized fast ion-conducting silver thioborosilicate glasses. Its essential feature is that the mobile cations are thought to conduct from one open site to the next open available site and, in this process, naturally by-pass filled or unavailable sites. The thermal excitation of cations out of their equilibrium sites is taken to be the mechanism for generating the open and available anion sites. Hence, the mean free path for a drifting cation between open available sites is directly proportional to the activated carrier concentration and is therefore a strong function of temperature. There is also a weak temperature dependence for the mean free path that arises because the capture cross section for a drifting cation by a stationary anion trap varies with drift velocity, e.g. the momentum of a fast cation allows it to closely approach an anion trap while avoiding capture or back scattering. The capture cross section of a cation by an anion trap is large because the interaction is electrostatic rather than geometric in origin. The model is shown to be in good agreement with all of our experimental data for silver thioborosilicate glasses and all model parameters are physically defined and reasonable in value. The model predicts a simple high-temperature conductivity dependence that is not exponential in nature. The model is also proposed to be valid for other materials such as crystalline conductors.
引用
收藏
页码:S1643 / S1658
页数:16
相关论文
共 29 条
[1]   A new analysis of the bulk ac electrical response of ionic conductors [J].
Almond, DP ;
Vainas, B ;
Uvarov, NF .
SOLID STATE IONICS, 1998, 111 (3-4) :253-261
[2]   MOBILE IONS IN AMORPHOUS SOLIDS [J].
ANGELL, CA .
ANNUAL REVIEW OF PHYSICAL CHEMISTRY, 1992, 43 :693-717
[3]  
BARROW GM, 1979, PHYSICAL CHEM
[4]  
Funke K, 2000, GLASS SCI TECHNOL, V73, P244
[5]   LITHIUM, SODIUM AND POTASSIUM-TRANSPORT IN FAST ION CONDUCTING GLASSES - TRENDS AND MODELS [J].
FUSCO, FA ;
TULLER, HL ;
BUTTON, DP .
MATERIALS SCIENCE AND ENGINEERING B-SOLID STATE MATERIALS FOR ADVANCED TECHNOLOGY, 1992, 13 (02) :157-164
[6]  
INGRAM MD, 1987, PHYS CHEM GLASSES, V28, P215
[7]   IONIC-CONDUCTIVITY AND GLASS STRUCTURE [J].
INGRAM, MD .
PHILOSOPHICAL MAGAZINE B-PHYSICS OF CONDENSED MATTER STATISTICAL MECHANICS ELECTRONIC OPTICAL AND MAGNETIC PROPERTIES, 1989, 60 (06) :729-740
[8]   TEMPERATURE-DEPENDENCE OF IONIC-CONDUCTIVITY IN GLASS - NON-ARRHENIUS BEHAVIOR IN THE AG7I4ASO4 SYSTEM [J].
INGRAM, MD ;
VINCENT, CA ;
WANDLESS, AR .
JOURNAL OF NON-CRYSTALLINE SOLIDS, 1982, 53 (1-2) :73-82
[9]   High field conduction in ionic glasses - Effect of a distribution of activation energies [J].
Isard, JO .
JOURNAL OF NON-CRYSTALLINE SOLIDS, 1996, 202 (1-2) :137-144
[10]   Distribution of activation energies explains ionic motion in glassy fast ion conductors: Li-7 NMR spin-lattice relaxation and ionic conductivity in xLi(2)S+(1-x)GeS2 [J].
Kim, KH ;
Torgeson, DR ;
Borsa, F ;
Cho, J ;
Martin, SW ;
Svare, I .
SOLID STATE IONICS, 1996, 91 (1-2) :7-19