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The main features of high-temperature superconductors (HTSC) that define their properties are intrinsic brittleness of oxide cuprates, the layered anisotropic structure and the supershort coherence length. Taking into account these features, this treatise presents research into HTSC microstructure and properties, and also explores the possibilities of optimization of the preparation techniques and superconducting compositions. The "composition-technique-experiment-theory-model," employed here, assumes considerable HTSC defectiveness and structure heterogeneity and helps to draw a comprehensive picture of modern representations of the microstructure, strength and the related structure-sensitive properties of the materials considered. Special attention is devoted to the Bi-Sr-Ca-Cu-O and Y-Ba-Cu-O families, which currently offer the most promising applications. Including a great number of illustrations and references, this monograph addresses students, post-graduate students and specialists, taking part in the development, preparation and research of new materials. This English-language edition incorporates key developments reported since the original Russian-language edition (2004).
High temperature superconductors. --- Materials at low temperatures --- Superconductors --- Morphology (Animals). --- Strongly Correlated Systems, Superconductivity. --- Animal Anatomy / Morphology / Histology. --- Animal morphology --- Animals --- Body form in animals --- Zoology --- Morphology --- Superconductivity. --- Superconductors. --- Animal anatomy. --- Animal anatomy --- Biology --- Physiology --- Superconducting materials --- Superconductive devices --- Cryoelectronics --- Electronics --- Solid state electronics --- Electric conductivity --- Critical currents --- Superfluidity --- Anatomy --- Materials
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The novel materials and devices based on nanotechnology and piezoelectric approaches have found wide applications in modern science techniques and technologies. A tremendous interest is ignited with the fast development of theoretical, experimental and numerical methods which provide new knowledge and are capable of providing a forecast on the development of very fine processes; particularly structural and phase transformations taking place during processing, loading and work of modern materials under critical influences. These specimens demonstrate a broad spectrum of properties in scale from
Nanotechnology. --- Piezoelectric devices. --- Dielectric devices --- Ferroelectric devices --- Molecular technology --- Nanoscale technology --- High technology
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The advanced materials and devices based on nanotechnology and piezoelectric approaches have found wide applications in modern science and techniques. Tremendous interest to similar studies is supported owing to fast improvement of theoretical, experimental and numerical methods. These achievements expand scientific knowledge on the physical world and provide a forecast on the development of very fine processes and transformations occurring during processing, loading and work of modern materials and devices under critical conditions. The considered specimens demonstrate a broad spectrum of pro
Piezoelectric devices --- Nanostructured materials. --- Nanomaterials --- Nanometer materials --- Nanophase materials --- Nanostructure controlled materials --- Nanostructure materials --- Ultra-fine microstructure materials --- Microstructure --- Nanotechnology --- Dielectric devices --- Ferroelectric devices --- Materials.
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Piezoelectric ceramics. --- Piezoelectric devices. --- Dielectric devices --- Ferroelectric devices --- Ceramics --- Piezoelectricity
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Piezoelectric devices --- Dielectric devices --- Ferroelectric devices --- Materials.
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Piezoelectric devices --- Piezoelectric materials. --- Piezoelectricity. --- Materials, Piezoelectric --- Dielectric devices --- Ferroelectric devices --- Piezo-electricity --- Piezoelectric effect --- Pyro- and piezo-electricity --- Crystallography --- Electricity --- Pyroelectricity --- Materials.
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Ferroelectric devices. --- Superconductors. --- Superconducting materials --- Superconductive devices --- Cryoelectronics --- Electronics --- Solid state electronics --- Electronic apparatus and appliances --- Piezoelectric devices --- Materials
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This book presents selected peer-reviewed contributions from the 2020 International Conference on “Physics and Mechanics of New Materials and Their Applications”, PHENMA 2020 (26–29 March 2021, Kitakyushu, Japan), focusing on processing techniques, physics, mechanics, and applications of advanced materials. The book describes a broad spectrum of promising nanostructures, crystal structures, materials, and composites with unique properties. It presents nanotechnological design approaches, environmental-friendly processing techniques, and physicochemical as well as mechanical studies of advanced materials. The selected contributions describe recent progress in computational materials science methods and algorithms (in particular, finite-element and finite-difference modelling) applied to various technological, mechanical, and physical problems. The presented results are important for ongoing efforts concerning the theory, modelling, and testing of advanced materials. Other results are devoted to promising devices with higher accuracy, increased longevity, and greater potential to work effectively under critical temperatures, high pressure, and in aggressive environments.
Materials science. --- Structural materials. --- Nanoscale science. --- Nanoscience. --- Nanostructures. --- Materials—Surfaces. --- Thin films. --- Materials Science, general. --- Structural Materials. --- Nanoscale Science and Technology. --- Surfaces and Interfaces, Thin Films. --- Films, Thin --- Solid film --- Solid state electronics --- Solids --- Surfaces (Technology) --- Coatings --- Thick films --- Nanoscience --- Physics --- Nano science --- Nanoscale science --- Nanosciences --- Science --- Architectural materials --- Architecture --- Building --- Building supplies --- Buildings --- Construction materials --- Structural materials --- Materials --- Material science --- Physical sciences --- Materials science --- Nanostructured materials --- Composite materials. --- Nanotechnology. --- Surfaces (Technology). --- Materials Science. --- Composites. --- Nanoscale Design, Synthesis and Processing. --- Computational Materials Science. --- Surfaces, Interfaces and Thin Film. --- Materials Characterization Technique. --- Data processing. --- Analysis. --- Surface phenomena --- Friction --- Surfaces (Physics) --- Tribology --- Molecular technology --- Nanoscale technology --- High technology --- Composites (Materials) --- Multiphase materials --- Reinforced solids --- Solids, Reinforced --- Two phase materials --- Surfaces
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Quantum mechanics. Quantumfield theory --- supergeleiding --- quantummechanica
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Materials science. --- Material science --- Physical sciences
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