Theoretical study of a five-coordinated silica polymorph

被引:66
作者
Badro, J
Teter, DM
Downs, RT
Gillet, P
Hemley, RJ
Barrat, JL
机构
[1] CARNEGIE INST WASHINGTON,GEOPHYS LAB,WASHINGTON,DC 20015
[2] CARNEGIE INST WASHINGTON,CTR HIGH PRESSURE RES,WASHINGTON,DC 20015
[3] ECOLE NORMALE SUPER LYON,LAB SCI TERRE,UMR 5570,INST UNIV FRANCE,F-69364 LYON 07,FRANCE
[4] UNIV LYON 1,CNRS,UMR 5561,DEPT PHYS MAT,F-69622 VILLEURBANNE,FRANCE
[5] VIRGINIA POLYTECH INST & STATE UNIV,DEPT MAT SCI & ENGN,BLACKSBURG,VA 24061
来源
PHYSICAL REVIEW B | 1997年 / 56卷 / 10期
关键词
D O I
10.1103/PhysRevB.56.5797
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Theoretical calculations are performed to study transformations in silica as a function of nonhydrostatic stress. Molecular-dynamics calculations reveal a crystalline-to-crystalline transition from alpha-quartz to a phase with five-coordinated silicon (Si-V) at high pressure in the presence of deviatoric stress. The phase, which appears for specific orientations of the stress tensor relative to the crystallographic axes of quartz, is a crystalline polymorph of silica with five-coordinated silicon. The structure possesses P3(2)21 space-group symmetry. First-principles calculations within the local-density approximation, as well as molecular dynamics and energy minimization with interatomic potentials, find this phase to be mechanically and energetically stable with respect to quartz at high pressure. The calculated x-ray diffraction pattern and vibrational properties of the phase are reported. Upon decompression, the Si-V phase reverts to alpha-quartz through an intermediate four-coordinated phase and an unusual isosymmetrical phase transformation. The results suggest the importance of application of nonhydrostatic stress conditions in the design and synthesis of novel materials.
引用
收藏
页码:5797 / 5806
页数:10
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