Determining fluid-crystal phase boundaries for a binary hard-sphere mixture using direct-coexistence simulations

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Access status: Embargo until 2026-09-23 , 124104_1_5.0321591.pdf (10.32 MB)

Publication date

2026-03-28

Authors

Alkemade, Rinske M.ISNI 0000000512489461
Salo, Alessandro
Filion, L.C.ISNI 0000000387851600
Smallenburg, FrankISNI 0000000395977772

Editors

Advisors

Supervisors

Document Type

Article

License

taverne

Abstract

Determining fluid-crystal phase boundaries via direct-coexistence methods can be challenging due to the fact that the simulation box can introduce crystal strain. Recently, a direct-coexistence approach was developed, which allows one to easily identify the equilibrium strain-free fluid-crystal coexistence in monodisperse systems. Here, we show that this approach can be readily extended to binary mixtures forming stoichiometric binary crystals, allowing accurate and efficient determination of the phase boundaries. Moreover, we examine how the choice of the crystal plane in contact with the fluid affects the accuracy of the phase boundary determination. The method is easy to implement and does not require prior knowledge of the binary fluid's equation of state. These results further establish the method as a robust and practical tool for accurately determining fluid-crystal phase boundaries.

Keywords

Taverne, General Physics and Astronomy, Physical and Theoretical Chemistry

Citation

Alkemade, R M, Salo, A, Filion, L & Smallenburg, F 2026, 'Determining fluid-crystal phase boundaries for a binary hard-sphere mixture using direct-coexistence simulations', The Journal of chemical physics, vol. 164, no. 12, 124104. https://doi.org/10.1063/5.0321591