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Nano-Glass Ceramics : Processing, Properties and Applications /

Nano-Glass Ceramics: Processing, Properties and Applications provides comprehensive coverage of synthesis and processing methods, properties and applications of the most important types of nano-glass ceramics, from a unique material science perspective. Emphasis is placed on the experimental and pra...

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Detalles Bibliográficos
Clasificación:Libro Electrónico
Autor principal: Marghussian, Vahak (Autor)
Formato: Electrónico eBook
Idioma:Inglés
Publicado: Oxford : William Andrew, an imprint of Elsevier, [2015]
Colección:Micro & nano technologies.
Temas:
Acceso en línea:Texto completo

MARC

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520 |a Nano-Glass Ceramics: Processing, Properties and Applications provides comprehensive coverage of synthesis and processing methods, properties and applications of the most important types of nano-glass ceramics, from a unique material science perspective. Emphasis is placed on the experimental and practical aspects of the subject while covering the theoretical and practical aspects and presenting, numerous examples and details of experimental methods. In the discussing the many varied applications of nano-glass ceramics, consideration is given to both, the fields of applications in which the materials are firmly established and the fields where great promise exists for their future exploitation. The methods of investigation adopted by researchers in the various stages of synthesis, nucleation, processing and characterization of glass ceramics are discussed with a focus on the more novel methods and the state of the art in developing nanostructured glass ceramics. 
505 0 |a Front Cover; Nano-Glass Ceramics; Copyright Page; Contents; Preface; Introduction; 1 Glass Crystallization; 1.1 Nucleation in Glass; 1.1.1 Homogeneous Nucleation; 1.1.1.1 Theoretical Background; 1.1.1.2 Experimental Studies of Homogeneous Nucleation; 1.1.2 Heterogeneous Nucleation; 1.1.2.1 Theoretical Background; 1.1.2.1.1 General Considerations; 1.1.2.1.2 Epitaxy in Heterogeneous Nucleation of Glasses; 1.1.2.1.3 The Effect of Glass-in-Glass Phase Separation on Heterogeneous Nucleation; 1.1.2.2 Experimental Studies of Heterogeneous Nucleation. 
505 8 |a 1.1.2.2.1 Heterogeneous Nucleation in the Presence of Phase Separation in Glass1.1.2.2.2 Crystal Nucleation in the Absence of Phase Separation in Glass; 1.1.2.2.3 Secondary Crystallization; 1.1.2.2.4 Determination of the Optimum Nucleation Temperature and Time; 1.1.2.2.5 Determination of the Type and Amount of Effective Nucleating Agents by DTA; 1.1.2.2.6 Determination of Crystal Nucleation rates; Particle Counting Method; Thermal Analysis Methods; 1.1.3 Nonclassical Theories of Crystal Nucleation in Glass; 1.1.3.1 General Considerations; 1.1.3.2 Phenomenological Models. 
505 8 |a 1.1.3.3 Density Functional Theory1.2 Crystal Growth in Glass; 1.2.1 Theoretical Background; 1.2.1.1 Normal Growth Model; 1.2.1.2 The Screw Dislocation Growth Model; 1.2.1.3 2D Surface-Nucleated Growth; 1.2.1.3.1 Jackson's Model for the Interface; 1.2.2 Experimental Studies of Crystal Growth in Glass; 1.3 Alternative Mechanisms of Glass Crystallization at Low Temperatures; 1.4 Overall Glass Crystallization Kinetics; 1.4.1 Theoretical Background; 1.4.2 Experimental Studies of the Crystallization Kinetics in Glass; 1.5 Concluding Remarks; 2 Optical Properties of Nano-Glass Ceramics. 
505 8 |6 880-01  |a Structure, Optical Properties, and Application of Transparent Mullite Glass CeramicsProcessing of Mullite Glass Ceramics; 2.2.2.2 Spinel Glass Ceramics; Properties and Application of Transparent Spinel Glass Ceramics; Broadband Optical Amplifiers and Tunable Lasers; Passive Q-switchers; Processing of Spinel Glass Ceramics; 2.2.2.3 Oxyfluoride Glass Ceramics; Processing of Oxyfluoride Glass Ceramics; General Considerations; Properties and Application of Fluorescent Oxyfluoride Glass Ceramics; Up-Conversion Fluorescent Oxyfluoride Glass Ceramics; Other Host Nano-Crystals. 
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880 8 |6 505-01/(S  |a 2.1 Theoretical Background of Transparency2.2 Application of Optical Nano-Glass Ceramics; 2.2.1 Low Thermal Expansion Glass Ceramics; 2.2.1.1 Structure, Properties, and Application of Stuffed β-Quartzss Glass Ceramics; 2.2.1.2 Processing of Stuffed β-Quartzss Glass Ceramics; 2.2.2 Luminescent Glass Ceramics; Theoretical Background; Laser Applications; Frequency Up-Conversion; Amplification at 1.3 and 1.5μm; Solar Energy Applications; Most Common Luminescent Glass Ceramics; 2.2.2.1 Transparent Mullite Glass Ceramics. 
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