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Crystallization as Studied by Broadband Dielectric Spectroscopy [electronic resource] / edited by Tiberio A. Ezquerra, Aurora Nogales.

Contributor(s): Ezquerra, Tiberio A [editor.] | Nogales, Aurora [editor.] | SpringerLink (Online service)Material type: TextTextSeries: Advances in DielectricsPublisher: Cham : Springer International Publishing : Imprint: Springer, 2020Edition: 1st ed. 2020Description: VIII, 290 p. 166 illus., 142 illus. in color. online resourceContent type: text Media type: computer Carrier type: online resourceISBN: 9783030561864Subject(s): Spectroscopy | Materials science | Polymers   | Amorphous substances | Complex fluids | Spectroscopy/Spectrometry | Characterization and Evaluation of Materials | Polymer Sciences | Soft and Granular Matter, Complex Fluids and MicrofluidicsAdditional physical formats: Printed edition:: No title; Printed edition:: No title; Printed edition:: No titleDDC classification: 543.2-543.8 LOC classification: QD95-96Online resources: Click here to access online
Contents:
General Concepts of Crystallization: Some Recent Results and Possible Future Developments -- High-Pressure Crystallization Of Glass-Forming Liquids At Varying Thermodynamic Conditions -- Crystallization Of Amorphous Pharmaceuticals At Ambient And Elevated Pressure Conditions -- Ordering Transitions In Short-Chain Alcohols -- Isothermal and Non-isothermal Crystallization in Liquid Crystals as seen by Broadband Dielectric Spectroscopy and Differential Scanning Calorimetry -- Control of Crystallization Pathways by Electric Fields -- Dynamics of water in partially crystallized solutions of glass forming materials and polymers: Implications on the behavior of bulk Water -- Order And Dielectric Relaxation During Polymer Crystallization -- Crystallization of Polymers Under 1d Confinement -- Dielectric Behaviour Of Nonpolar Polymers And Their Composites: The Case Of Semicrystalline Polyolefins -- Confined Glassy Dynamics in a Star-Shaped Polymer Induced by Crystallization: Case study of Polyhedral Oligomeric Polysilesquioxane-Isotactic Polystyrene (POSS-iPS).
In: Springer Nature eBookSummary: This book presents new approaches that offer a better characterization of the interrelationship between crystalline and amorphous phases. In recent years, the use of dielectric spectroscopy has significantly improved our understanding of crystallization. The combination of modern scattering methods, using either synchrotron light or neutrons and infrared spectroscopy with dielectrics, is now helping to reveal modifications of both crystalline and amorphous phases. In turn, this yields insights into the underlying physics of the crystallization process in various materials, e.g. polymers, liquid crystals and diverse liquids. The book offers an excellent introduction to a valuable application of dielectric spectroscopy, and a helpful guide for every scientist who wants to study crystallization processes by means of dielectric spectroscopy.
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General Concepts of Crystallization: Some Recent Results and Possible Future Developments -- High-Pressure Crystallization Of Glass-Forming Liquids At Varying Thermodynamic Conditions -- Crystallization Of Amorphous Pharmaceuticals At Ambient And Elevated Pressure Conditions -- Ordering Transitions In Short-Chain Alcohols -- Isothermal and Non-isothermal Crystallization in Liquid Crystals as seen by Broadband Dielectric Spectroscopy and Differential Scanning Calorimetry -- Control of Crystallization Pathways by Electric Fields -- Dynamics of water in partially crystallized solutions of glass forming materials and polymers: Implications on the behavior of bulk Water -- Order And Dielectric Relaxation During Polymer Crystallization -- Crystallization of Polymers Under 1d Confinement -- Dielectric Behaviour Of Nonpolar Polymers And Their Composites: The Case Of Semicrystalline Polyolefins -- Confined Glassy Dynamics in a Star-Shaped Polymer Induced by Crystallization: Case study of Polyhedral Oligomeric Polysilesquioxane-Isotactic Polystyrene (POSS-iPS).

This book presents new approaches that offer a better characterization of the interrelationship between crystalline and amorphous phases. In recent years, the use of dielectric spectroscopy has significantly improved our understanding of crystallization. The combination of modern scattering methods, using either synchrotron light or neutrons and infrared spectroscopy with dielectrics, is now helping to reveal modifications of both crystalline and amorphous phases. In turn, this yields insights into the underlying physics of the crystallization process in various materials, e.g. polymers, liquid crystals and diverse liquids. The book offers an excellent introduction to a valuable application of dielectric spectroscopy, and a helpful guide for every scientist who wants to study crystallization processes by means of dielectric spectroscopy.

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