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N. Taniguchi, Tokyo Sci. Univ., Noda, Japan, Kinzoku Hyomen Gijutsu 29 (1978) 220.
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Merriam Webster's Collegiate Dictionary, 11th edition, Merriam-Webster, Inc., Springfield, MA, 2003, see also: http://www.m-w.com/.
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Merriam Webster's Collegiate Dictionary, 11th edition, Merriam-Webster, Inc., Springfield, MA, 2003, see also: http://www.m-w.com/.
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T.L. Hill, Thermodynamics of Small Systems, Parts I and II, Benjamin, New York, 1963, 1964 (Refs. [9] and [10] were reprinted under the original title by Dover, New York, 1994).
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Academic Press, New York (A pdf reprint of with a new Preface and an electronically searchable index has been published in 2005 and is available via the European Virtual Institute for Thermal Metrology at their web site: http://www.evitherm.org/index.asp)
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Wunderlich B. Macromolecular Physics vol. 1-3 (1973-1980), Academic Press, New York. http://www.evitherm.org/index.asp (A pdf reprint of with a new Preface and an electronically searchable index has been published in 2005 and is available via the European Virtual Institute for Thermal Metrology at their web site: http://www.evitherm.org/index.asp)
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For a summary of these topics see
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For a summary of these topics see. Wunderlich B. Thermochim. Acta 340/41 (1999) 37
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Springer Verlag, Berlin (Adv. Polymer Sci. 87)
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Wunderlich B., Möller M., Grebowicz J., and Baur H. Conformational Motion and Disorder in Low and High Molecular Mass Crystals (1988), Springer Verlag, Berlin (Adv. Polymer Sci. 87)
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Wunderlich, B.1
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67650208488
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http://www.ictac.org/
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See, for example, B. Wunderlich, Thermal Analysis of Polymeric Materials, Springer-Verlag, Berlin, 2005, ISBN 978-3-540-23629-0 (Print), 978-3-540-26360-9 (Online), see also the detailed Computer Course: Thermal Analysis of Materials, available through http://athas.prz.rzeszow.pl and http://www.evitherm.org/index.asp.
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See, for example, B. Wunderlich, Thermal Analysis of Polymeric Materials, Springer-Verlag, Berlin, 2005, ISBN 978-3-540-23629-0 (Print), 978-3-540-26360-9 (Online), see also the detailed Computer Course: Thermal Analysis of Materials, available through http://athas.prz.rzeszow.pl and http://www.evitherm.org/index.asp.
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24
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67650191759
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The term macromolecule was first used by H. Staudinger, J. Fritschi, Helv. Chim. Acta 5 (1922) 788; for the Nobel Lecture in 1953, see H. Staudinger, Arbeitserinnerungen, Hüthig Verlag, Heidelberg, Germany, 1961, p. 317, 312.
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The term "macromolecule was first used by H. Staudinger, J. Fritschi, Helv. Chim. Acta 5 (1922) 788; for the Nobel Lecture in 1953, see H. Staudinger, Arbeitserinnerungen, Hüthig Verlag, Heidelberg, Germany, 1961, p. 317, 312.
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25
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0004252288
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The operational definition is discussed by, MacMillan, New York
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The operational definition is discussed by. Bridgeman P.W. The Logic of Modern Physics (1927), MacMillan, New York
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The importance of the glass transition is summarized in
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The importance of the glass transition is summarized in. Wunderlich B. Thermochim. Acta 446 (2006) 128
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67650182519
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For a detailed review see G.W. Gray, P.A. Winsor (Eds.), Liquid Crystals and Plastic Crystals, Wiley, Chichester, England, 1974; conformationally disordered (condis) crystals were suggested to exist in 1975 by G.W. Smith, in: G.H. Brown (Ed.), Advances in Liquid Crystals, 1, Academic Press, New York, 1975, p. 193, and were documented with many examples [28,18].
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For a detailed review see G.W. Gray, P.A. Winsor (Eds.), Liquid Crystals and Plastic Crystals, Wiley, Chichester, England, 1974; conformationally disordered (condis) crystals were suggested to exist in 1975 by G.W. Smith, in: G.H. Brown (Ed.), Advances in Liquid Crystals, vol. 1, Academic Press, New York, 1975, p. 193, and were documented with many examples [28,18].
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Les Etats Mésomorphes de la Matiére
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Friedel M.G. Les Etats Mésomorphes de la Matiére. Ann. Phys. (Paris) 18 (1922) 273
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Ehrenfest P. Phase changes in the ordinary and extended sense classified according to the corresponding singularities of the thermodynamic potential. Proc. Acad. Sci., Amsterdam 36 (1933) 153-157 (Suppl. 75b, Mitt Kammerlingh Onnes Inst, Leiden)
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J.W. Gibbs, Trans. Conn. Acad. III (1875) 108; an extended abstract was published in: Am. J. Science, Ser. 3, 16 (1878) 441. Reprinted in H.A. Bumstead, R. Gibbs van Name, The Scientific Papers of J. Willard Gibbs, 1, Thermodynamics, Dover Publ., New York, 1961 and later.
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J.W. Gibbs, Trans. Conn. Acad. III (1875) 108; an extended abstract was published in: Am. J. Science, Ser. 3, 16 (1878) 441. Reprinted in H.A. Bumstead, R. Gibbs van Name, The Scientific Papers of J. Willard Gibbs, vol. 1, Thermodynamics, Dover Publ., New York, 1961 and later.
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M. Pyda, http://athas.prz.rzeszow.pl.
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For an early discussion see. Tammann G. Z. anorg. allg. Chemie 111 (1920) 166
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For early experiments see
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The hole theory of liquids [H. Eyring, J. Chem. Phys. 4 (1936) 283] was applied to the glass transition by N. Hirai, H. Eyring, J. Appl. Phys. 29 (1958) 810. The cited size-evaluation and energy of holes in polystyrene: B. Wunderlich, D.M. Bodily, M.H. Kaplan, J. Appl. Phys. 35 (1964) 95.
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The hole theory of liquids [H. Eyring, J. Chem. Phys. 4 (1936) 283] was applied to the glass transition by N. Hirai, H. Eyring, J. Appl. Phys. 29 (1958) 810. The cited size-evaluation and energy of holes in polystyrene: B. Wunderlich, D.M. Bodily, M.H. Kaplan, J. Appl. Phys. 35 (1964) 95.
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39
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Liquids lead to spherical droplets if not distorted by gravity, and for crystals, the shape of minimal surface free energy is fixed by the so-called Wulff-construction
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Liquids lead to spherical droplets if not distorted by gravity, and for crystals, the shape of minimal surface free energy is fixed by the so-called Wulff-construction. Wulff G. Z. Krist. 34 (1901) 449
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For a recent review of iron nanoparticles see D.L. Huber, nano, 1 No. 5, Wiley-VCH, Weinheim, 2005, p. 482, www.small-journal.com.
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The basic heat capacity measurements on solid, water-free polyamids, copolyamids, and proteins and their analysis relative to vibrational contributions are available in: K.A. Roles, B. Wunderlich, Biopolymers 31 (1991) 477; K.A. Roles, A. Xenopoulos, B. Wunderlich, Biopolymers 33 (1993) 753; J. Polym. Sci., Part B: Polym. Phys. 31 (1993) 279; G. Zhang, B.V. Lebedev, B. Wunderlich, J.-Y. Zhang, J. Polym. Sci., Part B: Polym. Phys. 33 (1995) 2449; G. Zhang, S. Gerdes, B. Wunderlich, Macromol. Chem. Phys. 197 (1996) 3791; G. Zhang, B. Wunderlich, J. Therm. Anal. 49 (1997) 823.
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The basic heat capacity measurements on solid, water-free polyamids, copolyamids, and proteins and their analysis relative to vibrational contributions are available in: K.A. Roles, B. Wunderlich, Biopolymers 31 (1991) 477; K.A. Roles, A. Xenopoulos, B. Wunderlich, Biopolymers 33 (1993) 753; J. Polym. Sci., Part B: Polym. Phys. 31 (1993) 279; G. Zhang, B.V. Lebedev, B. Wunderlich, J.-Y. Zhang, J. Polym. Sci., Part B: Polym. Phys. 33 (1995) 2449; G. Zhang, S. Gerdes, B. Wunderlich, Macromol. Chem. Phys. 197 (1996) 3791; G. Zhang, B. Wunderlich, J. Therm. Anal. 49 (1997) 823.
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http://www.nano.gov/Nanotechnology_BigThingsfromaTinyWorld.pdf
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For superfast calorimetry see, for example, the proceedings of the 8th and 9th Lähnwitz Seminars, Thermochim. Acta 432 (2005); 461 (2007).
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For superfast calorimetry see, for example, the proceedings of the 8th and 9th Lähnwitz Seminars, Thermochim. Acta 432 (2005); 461 (2007).
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