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Titlebook: Chemical Physics of Molecular Condensed Matter; Kazuya Saito Book 2020 The Editor(s) (if applicable) and The Author(s), under exclusive li

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https://doi.org/10.1007/978-1-349-14620-8models relevant to such successive meltings within the so-called mean-field treatment (the Bragg–Williams approximation). Finally, we see the possibility of the internal melting of crystals consisting of flexible molecules, the importance of which we discuss in Chap. 9.
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https://doi.org/10.1007/978-981-13-3501-3ransitions are rather complicated without clear distinctions between different aspects of the problem. After learning some basic notions about the relaxation phenomena, issues related to glassy states and glass transition are sorted for molecular systems. The issues covered include relaxation, fragi
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Theory of the Electron-Hole Fluidhile ignoring molecular details. The flexibility, however, also works as important elements that lead to interesting features in cases of ensembles of relatively small molecules. Some basic examples have been described in previous Chapters. This Chapter introduces additional examples, which the auth
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Ya. E. Pokrovsky,K. I. Svistunovaronic and optical properties (related to electronic states of systems), magnetism, or polymer science. In this chapter, issues and relevant phenomena in which the author expects specific and intrinsic importance of molecular systems are discussed briefly using examples. The choice and achievement ar
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Chemical Physics of Molecular Condensed Matter978-981-15-9023-8Series ISSN 0342-4901 Series E-ISSN 2192-6603
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Abbas Belfar,Tarik Kadi,Hocine Ait-Kacins why such a description based on the identity of molecules is appropriate and the extent to which it is. Phenomena originating in its presence, such as liquefaction and crystallization, are briefly described. Some practical ways to treat intermolecular interaction, such as the Lennard-Jones potential and the atom-atom method, are described.
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