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      Relating melting trends and elasticity in simple metals: an empirical potential approach

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          Abstract

          We demonstrate that the melting points and other thermodynamic quantities of the alkali metals can be calculated based on static crystalline properties. To do this we derive analytic interatomic potentials for the alkali metals fitted precisely to cohesive and vacancy energies, elastic moduli, lattice parameter and crystal stability. These potentials are then used to calculate melting points by simulating the equilibration of solid and liquid samples in thermal contact at ambient pressure. With the exception of lithium, remarkably good agreement is found with experimental values. The instability of the bcc structure in Li and Na at low temperatures is also reproduced, and, unusually, is not due to a soft T1N phonon mode. No forces or finite temperature properties are included in the fit, so this demonstrates a surprisingly high level of intrinsic transferrability in the simple potentials. Currently, there are few potentials available for the alkali metals, so in, addition to demonstrating trends in behaviour, we expect that the potentials will be of broad general use.

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          Most cited references4

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          2011 Miracle Yearbook

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            OGOLEM: Global cluster structure optimisation for arbitrary mixtures of flexible molecules. A multiscaling, object-oriented approach

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              Interatomic potential for vanadium suitable for radiation damage simulations

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                Author and article information

                Journal
                2016-01-25
                2016-06-01
                Article
                10.1103/PhysRevB.93.184101
                1601.06701
                9ac9a56b-7b3a-4248-8ac8-784c2fecbfaa

                http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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                Custom metadata
                Physical Review B 93 184101 2016
                cond-mat.mtrl-sci

                Condensed matter
                Condensed matter

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