High-Pressure Crystallization of Glass-Forming Liquids …
53
35. Syono Y, Manghnani MH (eds) (1992) High-pressure research: application to earth and
planetary sciences, geophysical. Terra Scientific Publishing Company
36. Gutzow I, Durschang D, Russel CJ (1997) Crystallization of glassforming melts under hydrostatic pressure and shear stress. Part 1. Crystallization catalysis under hydrostatic pressure:
possibilitites and limitations. J Mater Sci 32:5389−5403
37. Hikosaka M, Rastogi S, Keller A, Kawabata H (1992) Investigations on the crystallization of
polyethylene under high pressure: role of mobile phases, lamellar thickening growth, phase
transformations, and morphology. J Macromol Sci Part B Phys 32(1):87–131
38. Munehisa Y, Chitoshi N, Tetuo T (1973) Melting and crystallization process of polyethylene
under high pressure. Polym J 4(5):526–533
39. Phillips PJ, Tseng HT (1989) Influence of pressure on crystallization in poly(ethylene
terephthalate). Macromolecules 22(4):1649–1655
40. Mierzwa M, Paluch M, Rzoska SJ, Ziolo J (2008) The liquid—glass and liquid—liquid
transitions of TPP at elevated pressure. J Phys Chem B 112:10383–10385
41. Chason E, Aziz MJ (1991) Effect of pressure on crystallization kinetics of cordierite glass. J
Non-Cryst Solids 130:204–210
42. Lu G-Q, Nygren E, Aziz MJ, Turnbull D, White CW (1988) Time-resolved reflectivity measurement of the pressure-enhanced crystallization rate of amorphous Si in a diamond anvil cell.
Mater Res Soc Symp Proc 100:435–440
43. Becker R, Döring W (1935) Kinetische Behandlung Der Keimbildung in Übersättigten
Dämpfen. Ann Phys 24:719–752
44. Farkas LZ (1927) Keimbildungsgeschwindigkeit in übersättigten Dämpfen. Phys Chem A
125:236–242
45. Turnbull D, Fisher JC (1949) Rate of nucleation in condensed systems. J Chem Phys 17(1):71–
73
46. Devaud G, Aziz MJ, Turnbull D (1989) High pressure crystallization of As 2 S 3 . J Non-Cryst
Solids 109:121–128
47. Schmelzer JWP, Abyzov AS, Fokin VM (2016) Thermodynamic aspects of pressure-induced
crystallization: Kauzmann pressure. Int J Appl Glas Sci 7:474–485
48. Schmelzer JWP, Abyzov AS (2018) Pressure-induced crystallization of liquids: maxima of
nucleation, growth, and overall crystallization rates. Int J Appl Glas Sci 9:198–207
49. Schmelzer JWP (2005) Nucleation theory and applications. Wiley-VCH
50. Shelby JE (1997) Introduction to glass science and technology. Royal Society of Chemistry
51. Zanotto ED (1992) Crystallization of liquids and glasses. Bras J Phys 22:77–84
52. Schmelzer JWP, Zanotto ED, Avramov I, Fokin VMJ (2006) Stress development and relaxation
during crystal growth in glass-forming liquids. J Non-Cryst Solids 352:434−443
53. Hatase M, Hanaya M, Hikima T, Oguni M (2002) Discovery of homogeneous-nucleation-based
crystallization in simple glass-forming liquid of toluene below its glass-transition temperature.
J Non-Cryst Solids 307:257–263
54. Konishi T, Tanaka H (2007) Possible origin of enhanced crystal growth in a glass. Phys Rev B
76:220201(R)
55. Floudas G, Paluch M, Grzybowski A, Ngai KL (2011) Molecular dynamics of glass-forming
systems. Springer-Verlag Berlin and Heidelberg GmbH & Co. KG
56. Descamps M, Disordered pharmaceutical materials. Wiley-VCH Verlag GmbH & Co. KGaA
57. Richert R (ed) (2018) Nonlinear dielectric spectroscopy. Springer International Publishing
58. Volkov AA, Prokhorov AS (2003) Broadband dielectric spectroscopy of solids. Radiophys
Quantum Electron 46(8–9):657–665
59. Kremer F, Schönhals A (2003) Broadband dielectric spectroscopy. Springer-Verlag Berlin
Heidelberg
60. Avrami M (1940) Kinetics of phase change I General theory. J Chem Phys 8:212–224
61. Szklarz G, Adrjanowicz K, Paluch M (2018) Cooling-rate versus compression-rate dependence of the crystallization in the glass-forming liquid. Propylene Carbonate Cryst Growth
Des 18(4):2538–2544
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