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Glass polymorphism in glycerol–water mixtures: II. Experimental studies

We report a detailed experimental study of (i) pressure-induced transformations in glycerol–water mixtures at T = 77 K and P = 0–1.8 GPa, and (ii) heating-induced transformations of glycerol–water mixtures recovered at 1 atm and T = 77 K. Our samples are prepared by cooling the solutions at ambient...

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Autores principales: Bachler, Johannes, Fuentes-Landete, Violeta, Jahn, David A., Wong, Jessina, Giovambattista, Nicolas, Loerting, Thomas
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4840991/
https://www.ncbi.nlm.nih.gov/pubmed/27044677
http://dx.doi.org/10.1039/c5cp08069j
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author Bachler, Johannes
Fuentes-Landete, Violeta
Jahn, David A.
Wong, Jessina
Giovambattista, Nicolas
Loerting, Thomas
author_facet Bachler, Johannes
Fuentes-Landete, Violeta
Jahn, David A.
Wong, Jessina
Giovambattista, Nicolas
Loerting, Thomas
author_sort Bachler, Johannes
collection PubMed
description We report a detailed experimental study of (i) pressure-induced transformations in glycerol–water mixtures at T = 77 K and P = 0–1.8 GPa, and (ii) heating-induced transformations of glycerol–water mixtures recovered at 1 atm and T = 77 K. Our samples are prepared by cooling the solutions at ambient pressure at various cooling rates (100 K s(–1)–10 K h(–1)) and for the whole range of glycerol mole fractions, χ (g). Depending on concentration and cooling rates, cooling leads to samples containing amorphous ice (χ (g) ≥ 0.20), ice (χ (g) ≤ 0.32), and/or “distorted ice” (0 < χ (g) ≤ 0.38). Upon compression, we find that (a) fully vitrified samples at χ (g) ≥ 0.20 do not show glass polymorphism, in agreement with previous works; (b) samples containing ice show pressure-induced amorphization (PIA) leading to the formation of high-density amorphous ice (HDA). PIA of ice domains within the glycerol–water mixtures is shown to be possible only up to χ (g) ≈ 0.32 (T = 77 K). This is rather surprising since it has been known that at χ (g) < 0.38, cooling leads to phase-separated samples with ice and maximally freeze-concentrated solution of χ (g) ≈ 0.38. Accordingly, in the range 0.32 < χ (g) < 0.38, we suggest that the water domains freeze into an interfacial ice, i.e., a highly-distorted form of layered ice, which is unable to transform to HDA upon compression. Upon heating samples recovered at 1 atm, we observe a rich phase behavior. Differential scanning calorimetry indicates that only at χ (g) ≤ 0.15, the water domains within the sample exhibit polyamorphism, i.e., the HDA-to-LDA (low-density amorphous ice) transformation. At 0.15 < χ (g) ≤ 0.38, samples contain ice, interfacial ice, and/or HDA domains. All samples (χ (g) ≤ 0.38) show: the crystallization of amorphous ice domains, followed by the glass transition of the vitrified glycerol–water domains and, finally, the melting of ice at high temperatures. Our work exemplifies the complex “phase” behavior of glassy binary mixtures due to phase-separation (ice formation) and polyamorphism, and the relevance of sample preparation, concentration as well as cooling rates. The presence of the distorted ice (called “interphase” by us) also explains the debated “drift anomaly” upon melting. These results are compatible with the high-pressure study by Suzuki and Mishima indicating disappearance of polyamorphism at P ≈ 0.03–0.05 GPa at χ (g) ≈ 0.12–0.15 [J. Chem. Phys., 2014, 141, 094505].
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spelling pubmed-48409912016-05-02 Glass polymorphism in glycerol–water mixtures: II. Experimental studies Bachler, Johannes Fuentes-Landete, Violeta Jahn, David A. Wong, Jessina Giovambattista, Nicolas Loerting, Thomas Phys Chem Chem Phys Chemistry We report a detailed experimental study of (i) pressure-induced transformations in glycerol–water mixtures at T = 77 K and P = 0–1.8 GPa, and (ii) heating-induced transformations of glycerol–water mixtures recovered at 1 atm and T = 77 K. Our samples are prepared by cooling the solutions at ambient pressure at various cooling rates (100 K s(–1)–10 K h(–1)) and for the whole range of glycerol mole fractions, χ (g). Depending on concentration and cooling rates, cooling leads to samples containing amorphous ice (χ (g) ≥ 0.20), ice (χ (g) ≤ 0.32), and/or “distorted ice” (0 < χ (g) ≤ 0.38). Upon compression, we find that (a) fully vitrified samples at χ (g) ≥ 0.20 do not show glass polymorphism, in agreement with previous works; (b) samples containing ice show pressure-induced amorphization (PIA) leading to the formation of high-density amorphous ice (HDA). PIA of ice domains within the glycerol–water mixtures is shown to be possible only up to χ (g) ≈ 0.32 (T = 77 K). This is rather surprising since it has been known that at χ (g) < 0.38, cooling leads to phase-separated samples with ice and maximally freeze-concentrated solution of χ (g) ≈ 0.38. Accordingly, in the range 0.32 < χ (g) < 0.38, we suggest that the water domains freeze into an interfacial ice, i.e., a highly-distorted form of layered ice, which is unable to transform to HDA upon compression. Upon heating samples recovered at 1 atm, we observe a rich phase behavior. Differential scanning calorimetry indicates that only at χ (g) ≤ 0.15, the water domains within the sample exhibit polyamorphism, i.e., the HDA-to-LDA (low-density amorphous ice) transformation. At 0.15 < χ (g) ≤ 0.38, samples contain ice, interfacial ice, and/or HDA domains. All samples (χ (g) ≤ 0.38) show: the crystallization of amorphous ice domains, followed by the glass transition of the vitrified glycerol–water domains and, finally, the melting of ice at high temperatures. Our work exemplifies the complex “phase” behavior of glassy binary mixtures due to phase-separation (ice formation) and polyamorphism, and the relevance of sample preparation, concentration as well as cooling rates. The presence of the distorted ice (called “interphase” by us) also explains the debated “drift anomaly” upon melting. These results are compatible with the high-pressure study by Suzuki and Mishima indicating disappearance of polyamorphism at P ≈ 0.03–0.05 GPa at χ (g) ≈ 0.12–0.15 [J. Chem. Phys., 2014, 141, 094505]. Royal Society of Chemistry 2016-04-20 2016-04-05 /pmc/articles/PMC4840991/ /pubmed/27044677 http://dx.doi.org/10.1039/c5cp08069j Text en This journal is © The Royal Society of Chemistry 2016 http://creativecommons.org/licenses/by/3.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution 3.0 Unported License (http://creativecommons.org/licenses/by/3.0/) which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Chemistry
Bachler, Johannes
Fuentes-Landete, Violeta
Jahn, David A.
Wong, Jessina
Giovambattista, Nicolas
Loerting, Thomas
Glass polymorphism in glycerol–water mixtures: II. Experimental studies
title Glass polymorphism in glycerol–water mixtures: II. Experimental studies
title_full Glass polymorphism in glycerol–water mixtures: II. Experimental studies
title_fullStr Glass polymorphism in glycerol–water mixtures: II. Experimental studies
title_full_unstemmed Glass polymorphism in glycerol–water mixtures: II. Experimental studies
title_short Glass polymorphism in glycerol–water mixtures: II. Experimental studies
title_sort glass polymorphism in glycerol–water mixtures: ii. experimental studies
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4840991/
https://www.ncbi.nlm.nih.gov/pubmed/27044677
http://dx.doi.org/10.1039/c5cp08069j
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