High-pressure properties of diaspore, AlO(OH)

被引:1
作者
A. Friedrich
D. J. Wilson
E. Haussühl
B. Winkler
W. Morgenroth
K. Refson
V. Milman
机构
[1] Johann Wolfgang Goethe-Universität Frankfurt,Institut für Geowissenschaften, Abt. Kristallographie
[2] Georg August Universität,Insitut für Anorganische Chemie
[3] Aarhus University,Department of Chemistry
[4] c/o DESY/HASYLAB,undefined
[5] Rutherford Appleton Laboratory,undefined
[6] Chilton,undefined
[7] Didcot,undefined
[8] Accelrys Inc.,undefined
[9] 334 Cambridge Science Park,undefined
来源
Physics and Chemistry of Minerals | 2007年 / 34卷
关键词
Diaspore; High pressure; Crystal structure; Synchrotron radiation; Density functional theory calculations;
D O I
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中图分类号
学科分类号
摘要
The structural compression mechanism and compressibility of diaspore, AlO(OH), were investigated by in situ single-crystal synchrotron X-ray diffraction at pressures up to 7 GPa using the diamond-anvil cell technique. Complementary density functional theory based model calculations at pressures up to 40 GPa revealed additional information on the pressure-dependence of the hydrogen-bond geometry and the vibrational properties of diaspore. A fit of a second-order Birch–Murnaghan equation of state to the p–V data resulted in the bulk modulus B0 = 150(3) GPa and B0 = 150.9(4) GPa for the experimental and theoretical data, respectively, while a fit of a third-order Birch–Murnaghan equation of state resulted in B0 = 143.7(9) GPa with its pressure derivative B′ = 4.4(6) for the theoretical data. The compression is anisotropic, with the a-axis being most compressible. The compression of the crystal structure proceeds mainly by bond shortening, and particularly by compression of the hydrogen bond, which crosses the channels of the crystal structure in the (001) plane, in a direction nearly parallel to the a-axis, and hence is responsible for the pronounced compression of this axis. While the hydrogen bond strength increases with pressure, a symmetrisation is not reached in the investigated pressure range up to 40 GPa and does not seem likely to occur in diaspore even at higher pressures. The stretching frequencies of the O–H bond decrease approximately linearly with increasing pressure, and therefore also with increasing O–H bond length and decreasing hydrogen bond length.
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页码:145 / 157
页数:12
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