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Dielectric Spectroscopy of Electronic Materials: Applied Physics of Dielectrics
Dielectric Spectroscopy of Electronic Materials: Applied Physics of Dielectrics
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Dielectric Spectroscopy of Electronic Materials: Applied Physics of Dielectrics is a comprehensive book that covers the results of four decades of research and applications in dielectric spectroscopy for solids, focusing on materials used in electronics. It offers detailed analysis of dielectric spectra conditioned by electrical polarization and conductivity, with original methods for simulating frequency distributions and investigating ferroelectrics on microwaves. The book is designed to be accessible to readers with various backgrounds and is useful for both beginners and advanced readers as a review of key concepts and recent advances in the field.
Format: Paperback / softback
Length: 376 pages
Publication date: 09 July 2021
Publisher: Elsevier Science Publishing Co Inc
Dielectric spectroscopy of electronic materials is a branch of applied physics that delves into the study of dielectrics, particularly those used in electronic devices. Over the past four decades, extensive research and applications have been conducted in this field, resulting in a comprehensive book that offers a detailed analysis of dielectric spectra.
One of the key distinguishing features of this book is its comprehensive treatment of the features of dielectric spectra influenced by specific mechanisms of electrical polarization and conductivity. The authors provide a detailed exploration of these mechanisms, including the effects of electric fields, magnetic fields, and temperature on dielectric properties. This in-depth analysis allows readers to gain a deeper understanding of the underlying principles governing dielectric behavior and its applications in electronic materials.
In addition to the theoretical analysis, the book presents several original methods for simulating frequency distributions, including relaxers and oscillators. These methods are particularly useful for studying ferroelectrics, which exhibit complex frequency-temperature dielectric spectra. The authors propose novel approaches for investigating these spectra, including the study of thin films and the use of microwaves.
Another notable aspect of this book is its accessibility to readers with varying levels of mathematical expertise. The authors have carefully streamlined the text, avoiding complex mathematical proofs and providing clear explanations and examples to facilitate a quick understanding of dielectric spectroscopy methods. This makes the book an invaluable resource for students, researchers, and practitioners in the field of electronic materials, regardless of their background in mathematics.
Furthermore, the book serves as a valuable review of the key concepts and latest advances in dielectric spectroscopy. It covers a wide range of topics, including dielectric relaxation processes, dielectric constants, and dielectric loss mechanisms. The authors provide concise summaries of the relevant literature, highlighting the most significant research findings and theoretical developments. This makes the book an excellent reference for advanced readers who wish to stay up-to-date with the latest advancements in this field.
In conclusion, Dielectric Spectroscopy of Electronic Materials: Applied Physics of Dielectrics is a comprehensive and authoritative book that provides a deep understanding of dielectric spectroscopy and its applications in electronic materials. With its detailed analysis, original methods, and accessible writing style, the book is an invaluable resource for students, researchers, and practitioners in the field. Whether you are a beginner or an experienced professional, this book will help you apply dielectric spectroscopy methods to your own research problems and stay at the forefront of this rapidly evolving field.
Weight: 1000g
Dimension: 229 x 152 (mm)
ISBN-13: 9780128235188
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