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  5. Hidden scale invariance of metals

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Article
English
2015

Hidden scale invariance of metals

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English
2015
Physical Review B
Vol 92 (17)
DOI: 10.1103/physrevb.92.174116

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Kresse Georg
Kresse Georg

University of Vienna

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Felix Hummel
Kresse Georg
Jeppe C. Dyre
+1 more

Abstract

Density functional theory (DFT) calculations of 58 liquid elements at their triple point show that most metals exhibit near proportionality between the thermal fluctuations of the virial and the potential energy in the isochoric ensemble. This demonstrates a general ``hidden'' scale invariance of metals making the condensed part of the thermodynamic phase diagram effectively one dimensional with respect to structure and dynamics. DFT computed density scaling exponents, related to the Gr\"uneisen parameter, are in good agreement with experimental values for the 16 elements where reliable data were available. Hidden scale invariance is demonstrated in detail for magnesium by showing invariance of structure and dynamics. Computed melting curves of period three metals follow curves with invariance (isomorphs). The experimental structure factor of magnesium is predicted by assuming scale invariant inverse power-law (IPL) pair interactions. However, crystal packings of several transition metals (V, Cr, Mn, Fe, Nb, Mo, Ta, W, and Hg), most post-transition metals (Ga, In, Sn, and Tl), and the metalloids Si and Ge cannot be explained by the IPL assumption. The virial-energy correlation coefficients of iron and phosphorous are shown to increase at elevated pressures. Finally, we discuss how scale invariance explains the Gr\"uneisen equation of state and a number of well-known empirical melting and freezing rules.

How to cite this publication

Felix Hummel, Kresse Georg, Jeppe C. Dyre, Ulf R. Pedersen (2015). Hidden scale invariance of metals. Physical Review B, 92(17), DOI: 10.1103/physrevb.92.174116.

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Publication Details

Type

Article

Year

2015

Authors

4

Datasets

0

Total Files

0

Language

English

Journal

Physical Review B

DOI

10.1103/physrevb.92.174116

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