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Bulk Aluminum at High Pressure: A First-Principles Study

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arxiv 0710.5122 v3 pith:R3C5TDXX submitted 2007-10-26 cond-mat.mtrl-sci

Bulk Aluminum at High Pressure: A First-Principles Study

classification cond-mat.mtrl-sci
keywords highpressurepressuresaluminumdensity-functionalfirst-principlesmetalsstate
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The behavior of metals at high pressure is of great importance to the fields of shock physics, geophysics, astrophysics, and nuclear materials. In order to further understand the properties of metals at high pressures we studied the equation of state of aluminum using first-principles techniques up to 2500 GPa, pressures within reach of the planned L.L.N.L. National Ignition Facility. Our simulations use density-functional theory and density-functional perturbation theory in the generalized gradient approximation at 0K. We found core overlaps to become relevant beyond pressures of 1200 GPa. The equations of state for three phases (fcc, bcc, and hcp) were calculated predicting the fcc-hcp, fcc-bcc, and hcp-bcc transitions to occur at 215 GPa, 307 GPa, and 435 GPa respectively. From the phonon dispersions at increasing pressure, we predict a softening of the lowest transverse acoustic vibrational mode along the [110] direction, which corresponds to a Born instability of the fcc phase at 725 GPa.

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