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Mixing Effects in the Crystallization of Supercooled Quantum Binary Liquids

Materials Science 2015-09-02 v1 Other Condensed Matter Chemical Physics

Abstract

By means of Raman spectroscopy of liquid microjets we have investigated the crystallization process of supercooled quantum liquid mixtures composed of parahydrogen (pH2_2) diluted with small amounts of up to 5\% of either neon or orthodeuterium (oD2_2), and of oD2_2 diluted with either Ne or pH2_2. We show that the introduction of Ne impurities affects the crystallization kinetics in both the pH2_2-Ne and oD2_2-Ne mixtures in terms of a significant reduction of the crystal growth rate, similarly to what found in our previous work on supercooled pH2_2-oD2_2 liquid mixtures [M. K\"uhnel et {\it al.}, Phys. Rev. B \textbf{89}, 180506(R) (2014)]. Our experimental results, in combination with path-integral simulations of the supercooled liquid mixtures, suggest in particular a correlation between the measured growth rates and the ratio of the effective particle sizes originating from quantum delocalization effects. We further show that the crystalline structure of the mixture is also affected to a large extent by the presence of the Ne impurities, which likely initiate the freezing process through the formation of Ne crystallites.

Cite

@article{arxiv.1504.07444,
  title  = {Mixing Effects in the Crystallization of Supercooled Quantum Binary Liquids},
  author = {M. Kühnel and J. M. Fernández and F. Tramonto and G. Tejeda and E. Moreno and A. Kalinin and M. Nava and D. E. Galli and S. Montero and R. E. Grisenti},
  journal= {arXiv preprint arXiv:1504.07444},
  year   = {2015}
}

Comments

19 pages, 7 figures, submitted to J. Chem. Phys

R2 v1 2026-06-22T09:24:09.126Z