Heating-induced glass-glass and glass-liquid transformations in computer simulations of water.
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[1] F. Starr,et al. Pressure-induced transformations in computer simulations of glassy water. , 2013, The Journal of chemical physics.
[2] R. Böhmer,et al. Water’s second glass transition , 2013, Proceedings of the National Academy of Sciences.
[3] Niall J. English,et al. Density equalisation in supercooled high- and low-density water mixtures. , 2013, The Journal of chemical physics.
[4] G. Patey,et al. An analysis of fluctuations in supercooled TIP4P/2005 water. , 2013, The Journal of chemical physics.
[5] A. Stroock,et al. The Stability Limit and other Open Questions on Water at Negative Pressure , 2013 .
[6] Mark R. Wilson,et al. Polyamorphism and Liquid–Liquid Phase Transitions in Amorphous Silicon and Supercooled Al2O3–Y2O3 Liquids , 2013 .
[7] David T. Limmer,et al. The putative liquid-liquid transition is a liquid-solid transition in atomistic models of water. II. , 2013, The Journal of chemical physics.
[8] Francesco Sciortino,et al. Free energy surface of ST2 water near the liquid-liquid phase transition. , 2012, The Journal of chemical physics.
[9] Yang Liu,et al. Liquid-liquid transition in ST2 water. , 2012, The Journal of chemical physics.
[10] Hajime Tanaka,et al. Bond orientational order in liquids: Towards a unified description of water-like anomalies, liquid-liquid transition, glass transition, and crystallization , 2012, The European Physical Journal E.
[11] J. Tse,et al. Pressure amorphized ices--an atomistic perspective. , 2012, Physical chemistry chemical physics : PCCP.
[12] F. Starr,et al. Interplay of the Glass Transition and the Liquid-Liquid Phase Transition in Water , 2012, Scientific Reports.
[13] Ken-ichiro Murata,et al. Liquid-liquid transition without macroscopic phase separation in a water-glycerol mixture. , 2012, Nature materials.
[14] H. E. Stanley,et al. Nanoscale Dynamics of Phase Flipping in Water near its Hypothesized Liquid-Liquid Critical Point , 2011, Scientific Reports.
[15] Francesco Sciortino,et al. Study of the ST2 model of water close to the liquid-liquid critical point. , 2011, Physical chemistry chemical physics : PCCP.
[16] E. Mayer,et al. Equilibrated high-density amorphous ice and its first-order transition to the low-density form. , 2011, The journal of physical chemistry. B.
[17] F. Sciortino,et al. Dynamical behavior near a liquid-liquid phase transition in simulations of supercooled water. , 2011, The journal of physical chemistry. B.
[18] J. Finney,et al. How many amorphous ices are there? , 2011, Physical chemistry chemical physics : PCCP.
[19] Y. Koga,et al. High-resolution calorimetry on thermal behavior of glycerol (I): Glass transition, crystallization and melting, and discovery of a solid–solid transition , 2011 .
[20] E. Mayer,et al. Volumetric study consistent with a glass-to-liquid transition in amorphous ices under pressure , 2011 .
[21] P. H. Poole,et al. Mixturelike behavior near a liquid-liquid phase transition in simulations of supercooled water. , 2011, Physical review letters.
[22] C. Vega,et al. Widom line and the liquid-liquid critical point for the TIP4P/2005 water model. , 2010, The Journal of chemical physics.
[23] O. Mishima. Polyamorphism in water , 2010, Proceedings of the Japan Academy. Series B, Physical and biological sciences.
[24] E. Mayer,et al. Reversibility and isotope effect of the calorimetric glass --> liquid transition of low-density amorphous ice. , 2010, Physical chemistry chemical physics : PCCP.
[25] P. Debenedetti,et al. Low-temperature fluid-phase behavior of ST2 water , 2009 .
[26] D. Paschek,et al. Thermodynamic and structural characterization of the transformation from a metastable low-density to a very high-density form of supercooled TIP4P-Ew model water. , 2008, Chemphyschem : a European journal of chemical physics and physical chemistry.
[27] E. Mayer,et al. Structural transitions in amorphous H2O and D2O: the effect of temperature , 2008 .
[28] E. Mayer,et al. Water polyamorphism: reversibility and (dis)continuity. , 2008, The Journal of chemical physics.
[29] S. Sastry,et al. Vitrification of a monatomic metallic liquid , 2007, Nature.
[30] Thomas Loerting,et al. Amorphous ices: experiments and numerical simulations , 2006 .
[31] A. Soper,et al. The local and intermediate range structures of the five amorphous ices at 80 K and ambient pressure: a Faber-Ziman and Bhatia-Thornton analysis. , 2006, The Journal of chemical physics.
[32] J. Loveday,et al. Annealed high-density amorphous ice under pressure , 2006 .
[33] C. Salzmann,et al. Amorphous ice: stepwise formation of very-high-density amorphous ice from low-density amorphous ice at 125 K. , 2006, Physical review letters.
[34] O. Andersson. Relaxation time of water's high-density amorphous ice phase. , 2005, Physical review letters.
[35] P. McMillan,et al. A density-driven phase transition between semiconducting and metallic polyamorphs of silicon , 2005, Nature materials.
[36] Hajime Tanaka,et al. On the abundance and general nature of the liquid–liquid phase transition in molecular systems , 2005 .
[37] H. Stanley,et al. Structural relaxation in the glass transition region of water. , 2005, Physical review. E, Statistical, nonlinear, and soft matter physics.
[38] J. Tse,et al. Investigation of the intermediate- and high-density forms of amorphous ice by molecular dynamics calculations and diffraction experiments , 2005 .
[39] L. Bachmann,et al. Water Behaviour: Glass transition in hyperquenched water? , 2005, Nature.
[40] A. Geiger,et al. Liquid-liquid phase transitions in supercooled water studied by computer simulations of various water models. , 2005, The Journal of chemical physics.
[41] H. Stanley,et al. Structural order in glassy water. , 2005, Physical review. E, Statistical, nonlinear, and soft matter physics.
[42] F. Sciortino,et al. Phase diagram of amorphous solid water: low-density, high-density, and very-high-density amorphous ices. , 2005, Physical review. E, Statistical, nonlinear, and soft matter physics.
[43] J. Loveday,et al. Nature of the polyamorphic transition in ice under pressure. , 2005, Physical review letters.
[44] A. Polian,et al. Polyamorphic transition of germanium under pressure , 2004 .
[45] M. Parrinello,et al. Polyamorphism of ice at low temperatures from constant-pressure simulations. , 2004, Physical review letters.
[46] H. Stanley,et al. Relation between the high density phase and the very-high density phase of amorphous solid water. , 2004, Physical review letters.
[47] Hiroshi Mataki,et al. Liquid-liquid transition in the molecular liquid triphenyl phosphite. , 2004, Physical review letters.
[48] B. Bol'shakov,et al. On the Number of Amorphous Phases in n-Butanol , 2003 .
[49] F. Sciortino,et al. Physics of the liquid-liquid critical point. , 2003, Physical review letters.
[50] C. Salzmann,et al. The low-temperature dynamics of recovered ice XII as studied by differential scanning calorimetry: a comparison with ice V , 2003 .
[51] H. Stanley,et al. Potential-energy landscape study of the amorphous-amorphous transformation in H(2)O. , 2003, Physical review letters.
[52] Pablo G. Debenedetti,et al. Supercooled and glassy water , 2003 .
[53] H. Schober,et al. Kinetics of the high- to low-density amorphous water transition , 2003 .
[54] O. Mishima,et al. Propagation of the polyamorphic transition of ice and the liquid–liquid critical point , 2002, Nature.
[55] D. Klug,et al. Structural Studies of Several Distinct Metastable Forms of Amorphous Ice , 2002, Science.
[56] J L Finney,et al. Structures of high and low density amorphous ice by neutron diffraction. , 2002, Physical review letters.
[57] O. Andersson,et al. Thermal conductivity of amorphous ices , 2002 .
[58] P. McMillan,et al. Pressure-induced amorphization and an amorphous–amorphous transition in densified porous silicon , 2001, Nature.
[59] Starr,et al. Free energy surface of supercooled water , 2000, Physical review. E, Statistical physics, plasmas, fluids, and related interdisciplinary topics.
[60] H. Stanley,et al. The relationship between liquid, supercooled and glassy water , 1998, Nature.
[61] W. Kob,et al. Test of mode coupling theory for a supercooled liquid of diatomic molecules. II. q -dependent orientational correlators , 1997, cond-mat/9710022.
[62] C. Angell,et al. Glass transitions and first order liquid-metal-to-semiconductor transitions in 4-5-6 covalent systems , 1996 .
[63] I. Cohen,et al. A Low-Temperature Amorphous Phase in a Fragile Glass-Forming Substance , 1996 .
[64] Osamu Mishima,et al. Reversible first‐order transition between two H2O amorphs at ∼0.2 GPa and ∼135 K , 1994 .
[65] Stanley,et al. Phase diagram for amorphous solid water. , 1993, Physical review. E, Statistical physics, plasmas, fluids, and related interdisciplinary topics.
[66] H. Eugene Stanley,et al. Phase behaviour of metastable water , 1992, Nature.
[67] O. Mishima,et al. Visual Observations of the Amorphous-Amorphous Transition in H2O Under Pressure , 1991, Science.
[68] D. Klug,et al. Heat capacity and glass transition behavior of amorphous ice , 1988 .
[69] J. Banavar,et al. Computer Simulation of Liquids , 1988 .
[70] G. P. Johari,et al. The glass–liquid transition of hyperquenched water , 1987, Nature.
[71] Klein,et al. Pressure-induced phase transformations in ice. , 1987, Physical review letters.
[72] E. Mayer. New method for vitrifying water and other liquids by rapid cooling of their aerosols , 1985 .
[73] E. Whalley,et al. An apparently first-order transition between two amorphous phases of ice induced by pressure , 1985, Nature.
[74] H. Berendsen,et al. Molecular dynamics with coupling to an external bath , 1984 .
[75] E. Whalley,et al. ‘Melting ice’ I at 77 K and 10 kbar: a new method of making amorphous solids , 1984, Nature.
[76] M. Grimsditch,et al. Polymorphism in amorphous SiO2 , 1984 .
[77] W. L. Jorgensen,et al. Comparison of simple potential functions for simulating liquid water , 1983 .
[78] R. J. Speedy. Limiting forms of the thermodynamic divergences at the conjectured stability limits in superheated and supercooled water , 1982 .
[79] P. B. Macedo,et al. STRUCTURAL RELAXATION IN VITREOUS MATERIALS * , 1976 .
[80] F. Stillinger,et al. Improved simulation of liquid water by molecular dynamics , 1974 .
[81] W. Kauzmann. The Nature of the Glassy State and the Behavior of Liquids at Low Temperatures. , 1948 .
[82] F. Starr,et al. Wesleyan University From the SelectedWorks of Francis Starr 2006 Relation between Rotational and Translational Dynamic Heterogeneities in Water , 2016 .
[83] P. Debenedetti,et al. The liquid-liquid transition in supercooled ST2 water: a comparison between umbrella sampling and well-tempered metadynamics. , 2013, Faraday discussions.
[84] J. Loveday,et al. Recrystallisation of HDA ice under pressure by in-situ neutron diffraction to 3.9 GPa , 2003 .
[85] C. Salzmann,et al. Pure ices IV and XII from high-density amorphous ice , 2003 .
[86] A. Hallbrucker,et al. Ice XII forms on compression of hexagonal ice at 77 K via high-density amorphous water , 2001 .
[87] P. McMillan,et al. Density-driven liquid–liquid phase separation in the system AI2O3–Y2O3 , 1994, Nature.
[88] Pablo G. Debenedetti,et al. Spinodal curve of some supercooled liquids , 1991 .
[89] G. P. Johari. Introduction to the Glassy State in the Undergraduate Curriculum. , 1974 .