Structural evolution of rutile-type and CaCl2-type germanium dioxide at high pressure

被引:89
作者
Haines, J
Léger, JM
Chateau, C
Pereira, AS
机构
[1] CNRS, Lab Phys Chim Mat, F-92190 Meudon, France
[2] UFRGS, Inst Fis, BR-91501970 Porto Alegre, RS, Brazil
[3] UFRGS, Escola Engn, BR-91501970 Porto Alegre, RS, Brazil
关键词
germanium dioxide; high pressure phase transition; Rietveld refinement;
D O I
10.1007/s002690000092
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Germanium dioxide was found to undergo a transition from the tetragonal rutile-type to the orthorhombic CaCl2-type phase above 25 GPa. The detailed structural evolution of both phases at high pressure in a diamond anvil cell has been investigated by Rietveld refinement using angle-dispersive. X-ray powder-diffraction data. The square of the spontaneous strain (a - b)/(a + b) in the orthorhombic phase was found to be a linear function of pressure and no discontinuities in the cell constants and volume were observed, indicating that the transition is second-order and proper ferroelastic. Compression of the GeO6 octahedra was found to be anisotropic, with the apical Ge-O distances decreasing to a greater extent than the equatorial distances and becoming shorter than the latter above 7 GPa. Above this pressure, the GeO6 octahedron exhibits the common type of tetragonal distortion predicted by a simple ionic model and observed for most rutile-type structures such as those of the heavier group-14 dioxides and the metal difluorides. Above the phase transition, the columns of edge-sharing octahedra tilt about their two fold axes parallel to c and the rotation angle reaches 10.2(5)degrees by 36(1) GPa so as to yield a hexagonal close-packed oxygen sublattice. The compressibility increases at the phase change as is expected for a second-order transition at which all additional compression mechanism becomes available.
引用
收藏
页码:575 / 582
页数:8
相关论文
共 46 条
[1]  
ANDERSON OL, 1972, NATURE SOLID EARTH, P575
[2]   Pressure-induced Landau-type transition in stishovite [J].
Andrault, D ;
Fiquet, G ;
Guyot, F ;
Hanfland, M .
SCIENCE, 1998, 282 (5389) :720-724
[3]  
BARNIGHAUSEN H, 1984, ACTA CRYSTALLOGR A, V40, pC96
[6]   RUTILE-TYPE DERIVATIVES [J].
BAUR, WH .
ZEITSCHRIFT FUR KRISTALLOGRAPHIE, 1994, 209 (02) :143-150
[7]   RUTILE-TYPE COMPOUNDS .4. SIO2, GEO2 AND A COMPARISON WITH OTHER RUTILE-TYPE STRUCTURES [J].
BAUR, WH ;
KHAN, AA .
ACTA CRYSTALLOGRAPHICA SECTION B-STRUCTURAL CRYSTALLOGRAPHY AND CRYSTAL CHEMISTRY, 1971, B 27 (NOV15) :2133-&
[8]   FINITE ELASTIC STRAIN OF CUBIC CRYSTALS [J].
BIRCH, F .
PHYSICAL REVIEW, 1947, 71 (11) :809-824
[9]   Structural studies of rutile-type metal dioxides [J].
Bolzan, AA ;
Fong, C ;
Kennedy, BJ ;
Howard, CJ .
ACTA CRYSTALLOGRAPHICA SECTION B-STRUCTURAL SCIENCE CRYSTAL ENGINEERING AND MATERIALS, 1997, 53 :373-380
[10]   STRUCTURAL-ELECTRONIC RELATIONSHIPS IN RUTILE [J].
BURDETT, JK .
ACTA CRYSTALLOGRAPHICA SECTION B-STRUCTURAL SCIENCE, 1995, 51 :547-558