Influence of glass chemical composition on the Na-O bond distance:: a 23Na 3Q-MAS NMR and molecular dynamics study

被引:87
作者
Angeli, F
Delaye, JM
Charpentier, T
Petit, JC
Ghaleb, D
Faucon, P
机构
[1] CEA Saclay, Serv Chim Mol, F-91191 Gif Sur Yvette, France
[2] CEA, Serv Confinement Dechets, F-30207 Bagnols Sur Ceze, France
关键词
D O I
10.1016/S0022-3093(00)00259-3
中图分类号
TQ174 [陶瓷工业]; TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
The sodium environment in oxide glasses was investigated by (23)Na multiple-quantum magic-angle spinning (MQ-MAS) NMR spectroscopy and compared with molecular dynamics simulations. In the experimental approach, a spectrum-inversion was employed taking into account the transfer efficiency involved in the MQ-MAS experiment. This allowed the reconstruction of the underlying two-dimensional distribution of the isotropic chemical shift correlated with the quadrupolar interaction. The isotropic chemical shift distributions were extracted from the MQ-MAS spectra to infer Na-O distance distributions. First, a Na(2)O-2SiO(2) glass and its crystal analogue were characterized by this method to observe the disorder effect in the glass through the Na-O distance distribution. Thereafter, in order to study the influence of the chemical composition on the Na-O distance and distribution, additional glasses were investigated with NMR and simulation: Na(2)O-5SiO(2), Na(2)O-2CaO-3SiO(2), Na(2)O-Al(2)O(3)-3SiO(2) and Na(2)O-B(2)O(3)-3SiO(2). The molecular dynamics results are in good agreement with the experimental findings. The mean Na-O distance is higher when network formers are added to the sodium silicate glass. The effects on the Na-O distance distribution are also discussed. The simulation relates these results to the existence of several types of Na: near the non-bridging oxygen of the silicon, or as aluminum or boron charge compensator. This can be explained through charge and geometric effects. (C) 2000 Elsevier Science B.V. All rights reserved.
引用
收藏
页码:132 / 144
页数:13
相关论文
共 59 条
[21]  
GULL SF, 1989, FUND THEOR, V36, P53
[22]   STRUCTURE OF LITHIUM SODIUM YTTRIUM SILICATE NA2LIYSI6O15 [J].
GUNAWARDANE, RP ;
HOWIE, RA ;
GLASSER, FP .
ACTA CRYSTALLOGRAPHICA SECTION B-STRUCTURAL SCIENCE, 1982, 38 (MAY) :1405-1408
[23]  
GUNAWARDANE RP, 1973, J CHEM SOC DA, V2397
[24]   STRUCTURE AND ENERGETICS IN MIXED-ALKALI-METAL SILICATE-GLASSES FROM MOLECULAR-DYNAMICS [J].
HUANG, CD ;
CORMACK, AN .
JOURNAL OF MATERIALS CHEMISTRY, 1992, 2 (03) :281-287
[25]   THE STRUCTURE OF SODIUM-SILICATE GLASS [J].
HUANG, CD ;
CORMACK, AN .
JOURNAL OF CHEMICAL PHYSICS, 1990, 93 (11) :8180-8186
[26]  
Inoue H, 1996, PHYS CHEM GLASSES, V37, P116
[27]  
KIRKPATRICK RJ, 1985, AM MINERAL, V70, P106
[28]   NUCLEAR-MAGNETIC-RESONANCE INVESTIGATION OF THE STRUCTURES OF PHOSPHATE AND PHOSPHATE-CONTAINING GLASSES - A REVIEW [J].
KIRKPATRICK, RJ ;
BROW, RK .
SOLID STATE NUCLEAR MAGNETIC RESONANCE, 1995, 5 (01) :9-21
[29]   HIGH-RESOLUTION NMR OF QUADRUPOLAR NUCLEI IN ROTATING SOLIDS [J].
KUNDLA, E ;
SAMOSON, A ;
LIPPMAA, E .
CHEMICAL PHYSICS LETTERS, 1981, 83 (02) :229-232
[30]  
LLOR A, 1988, CHEM PHYS LETT, V2, P285