Strength and equation of state of boron suboxide from radial x-ray diffraction in a diamond cell under nonhydrostatic compression

被引:84
作者
He, DW [1 ]
Shieh, SR [1 ]
Duffy, TS [1 ]
机构
[1] Princeton Univ, Dept Geosci, Princeton, NJ 08544 USA
基金
美国国家科学基金会;
关键词
D O I
10.1103/PhysRevB.70.184121
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Using radial x-ray diffraction techniques together with lattice strain theory, the behavior of boron suboxide (B6O) was investigated under nonhydrostatic compression to 65.3 GPa in a diamond-anvil cell. The apparent bulk modulus derived from nonhydrostatic compression data varies from 363 GPa to 124 GPa depending on the orientation of the diffraction planes with respect to the loading axis. Measurement of the variation of lattice spacing with angle, psi, from the loading axis allows the d spacings corresponding to hydrostatic compression to be obtained. The hydrostatic d spacing obtained from a linear fitting to data at 0degrees and 90degrees is consistent with direct measurements at the appropriate angle (psi=54.7degrees) to within 0.5%, which suggests that even two measurements (psi=0degrees and 90degrees) are sufficient for accurate hydrostatic equation of state determination. The hydrostatic compression data yield a bulk modulus K-0=270+/-12 GPa and its pressure derivative K-0(')=1.8+/-0.3. The ratio of differential stress to shear modulus ranges from 0.021 to 0.095 at pressures of 9.3-65.3 GPa. Together with estimates of the high-pressure shear modulus, a lower bound to the yield strength is 26-30 GPa at the highest pressure. The yield strength of B6O is about a factor of 2 larger than for other strong solids such as Al2O3. The ratio of yield stress to shear modulus derived from lattice strain theory is also consistent with the result obtained by the analysis of x-ray peak width. This ratio might be a good qualitative indicator of hardness as it reflects the contributions of both plastic and elastic deformation.
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页码:1 / 9
页数:9
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