Publication date: Apr 20, 2020
Elemental gallium possesses several intriguing properties such as a low melting point, a density anomaly and an electronic structure in which covalent and metallic features coexist. In order to simulate this complex system, we construct an ab-initio quality interaction potential by training a neural network on a set of density functional theory calculations performed on configurations generated in multithermal-multibaric simulations. Here we show that the relative equilibrium between liquid gallium, alpha-Ga, beta-Ga, and Ga-II is well described. The resulting phase diagram is in agreement with the experimental findings. The local structure of liquid gallium and its nucleation into alpha-Ga and beta-Ga are studied. We find that the formation of metastable beta-Ga is kinetically favored over the thermodinamically stable alpha-Ga. Finally, we provide insight into the experimental observations of extreme undercooling of liquid Ga.
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File name | Size | Description |
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Input.zip
MD5md5:93f0211376f2ea80b99e3fda0550811a
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524.2 KiB | Plumed input files |
Refcv_code.zip
MD5md5:959b40785174cb84c200c94826830a5e
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7.0 KiB | Code to calculate reference CV |
NN_potential.zip
MD5md5:c2be8986f2be601042758623830fec60
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1.4 MiB | NN potential for gallium |
README.txt
MD5md5:086021d6b98a0e15975699d16f2cc1df
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595 Bytes | README |
2020.0039/v1 (version v1) [This version] | Apr 20, 2020 | DOI10.24435/materialscloud:2020.0039/v1 |