4.8 Article

Metastable-solid phase diagrams derived from polymorphic solidification kinetics

Publisher

NATL ACAD SCIENCES
DOI: 10.1073/pnas.2017809118

Keywords

phase transitions; kinetic stabilization; metastability; solidification; phase diagram

Funding

  1. US Department of Energy by Lawrence Livermore National Laboratory [DE-AC52-07NA27344]

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This study investigates the kinetic stabilization of metastable crystal phases during solidification processes through molecular dynamics simulations and crystal-liquid equilibria studies. It is found that metastable solid phases can coexist with the liquid phase at any given pressure, with nucleation rates into solid clusters in the liquid basin being practically calculable. The results indicate the possibility of kinetic instabilities overriding phase selections made during the nucleation stage, leading to the growth of metastable crystal phases under specific conditions.
Nonequilibrium processes during solidification can lead to kinetic stabilization of metastable crystal phases. A general framework for predicting the solidification conditions that lead to metastable-phase growth is developed and applied to a model face-centered cubic (fcc) metal that undergoes phase transitions to the body-centered cubic (bcc) as well as the hexagonal close-packed phases at high temperatures and pressures. Large-scale molecular dynamics simulations of ultrarapid freezing show that bcc nucleates and grows well outside of the region of its thermodynamic stability. An extensive study of crystal-liquid equilibria confirms that at any given pressure, there is a multitude of metastable solid phases that can coexist with the liquid phase. We define for every crystal phase, a solid cluster in liquid (SCL) basin, which contains all solid clusters of that phase coexisting with the liquid. A rigorous methodology is developed that allows for practical calculations of nucleation rates into arbitrary SCL basins from the undercooled melt. It is demonstrated that at large undercoolings, phase selections made during the nucleation stage can be undone by kinetic instabilities amid the growth stage. On these bases, a solidification-kinetic phase diagram is drawn for the model fcc system that delimits the conditions for macroscopic grains of metastable bcc phase to grow from the melt. We conclude with a study of unconventional interfacial kinetics at special interfaces, which can bring about heterogeneous multiphase crystal growth. A first-order interfacial phase transformation accompanied by a growth-mode transition is examined.

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