MILTON OHRING THIN FILMS PDF

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This is the first book that can be considered a textbook on thin film science, complete with exercises at the end of each chapter. The knowledge base is intended for science and engineering students in advanced undergraduate or first-year graduate level courses on thin films and scientists and engineers who are entering or require an overview of the field. Since , when the book was first published, the field of thin films has expanded tremendously, especially with regard to technological applications.

The second edition will bring the book up-to-date with regard to these advances. Most chapters have been greatly updated, and several new chapters have been added. Advanced undergraduate and first-year graduate students in materials science and electrical engineering; researchers in industrial in-house courses, or short courses offered by professional societies. Chapter 1 A Review of Materials Science 1. Introduction 1. Structure 1. Defects in Solids 1.

Bonds and Bands in Materials 1. Thermodynamics of Materials 1. Kinetics 1. Nucleation 1. An Introduction to Mechanical Behavior 1. Introduction 2. Kinetic Theory of Gases 2. Gas Transport and Pumping 2. Vacuum Pumps 2.

Vacuum Systems 2. Introduction 3. The Physics and Chemistry of Evaporation 3. Film Thickness Uniformity and Purity 3. Evaporation Hardware 3. Evaporation Processes and Applications 3. Introduction 4. Plasmas, Discharges, and Arcs 4. Fundamentals of Plasma Physics 4. Reactions in Plasmas 4. Physics of Sputtering 4. Ion Bombardment Modification of Growing Films 4.

Introduction 5. Magnetron Sputtering 5. Plasma Etching 5. Introduction 6. Reaction Types 6. Thermodynamics of CVD 6. Gas Transport 6. Film Growth Kinetics 6. Thermal CVD Processes 6. Safety 6. Introduction 7. An Atomic View of Substrate Surfaces 7.

Thermodynamic Aspects of Nucleation 7. Kinetic Processes in Nucleation and Growth 7. Experimental Studies of Nucleation and Growth 7. Conclusion Exercises References Chapter 8 Epitaxy 8. Introduction 8. Manifestations of Epitaxy 8. Lattice Misfit and Defects in Epitaxial Films 8. Epitaxy of Compound Semiconductors 8. Mechanisms and Characterization of Epitaxial Film Growth 8. Introduction 9. Structural Morphology of Deposited Films and Coatings 9. Computational Simulations of Film Structure 9.

Constrained Film Structures 9. Amorphous Thin Films 9. Introduction Film Thickness Structural Characterization of Films and Surfaces Chemical Characterization of Surfaces and Films Fundamentals of Diffusion Interdiffusion in Thin Metal Films Metal-Semiconductor Reactions Mechanical Testing and Strength of Thin Films Analysis of Internal Stress Techniques for Measuring Internal Stress in Films Mechanical Relaxation Effects in Stressed Films Adhesion Conclusion Exercises References.

From this perspective and the well-written tutorial style of the book, the reader will gain a deeper physical understanding of failure mechanisms in electronic materials and devices; acquire skills in the mathematical handling of reliability data; and better appreciate future technology trends and the reliability issues they raise. Praise for the First Edition "There is a need for new, comprehensive texts and references in [advanced materials processing] and its subdisciplines.

This has been especially true for thin films, and of the several recent books on the subject, Milton Ohring's extensive volume is without a doubt the best. The book is very well written, presented, and illustrated. It will prove useful to the scientist or engineer in coatings, to the college senior working on a project, and especially to graduate students in materials science and engineering and to faculty involved in teaching or research in the area of thin films.

An excellent acquisition for an academic library. His examples and technical insights do a great deal to make his text readable His insight and experience are quite evident in this textbook.

I congratulate the author for proposing a thoughtful treatment of this increasingly popular subject. This book represents his accumulated experiences of teaching and research.

Thin film science is at the heart of many of our most advanced technologies. This book should prove invaluable not only to the university student but also to the professional who needs a broad overview of this important field. We are always looking for ways to improve customer experience on Elsevier.

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View on ScienceDirect. Author: Milton Ohring. Hardcover ISBN: Paperback ISBN: Imprint: Academic Press. Published Date: 15th October Page Count: For regional delivery times, please check When will I receive my book? Sorry, this product is currently out of stock.

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Materials Science of Thin Films

By Milton Ohring. This is the first book that can be considered a textbook on thin film science, complete with exercises at the end of each chapter. The knowledge base is intended for science and engineering students in advanced undergraduate or first-year graduate level courses on thin films and scientists and engineers who are entering or require an overview of the field. Since , when the book was first published, the field of thin films has expanded tremendously, especially with regard to technological applications. The second edition will bring the book up-to-date with regard to these advances.

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Materials Science of Thin Films 3e

This is the first book that can be considered a textbook on thin film science, complete with exercises at the end of each chapter. The knowledge base is intended for science and engineering students in advanced undergraduate or first-year graduate level courses on thin films and scientists and engineers who are entering or require an overview of the field. Since , when the book was first published, the field of thin films has expanded tremendously, especially with regard to technological applications. The second edition will bring the book up-to-date with regard to these advances. Most chapters have been greatly updated, and several new chapters have been added. From this perspective and the well-written tutorial style of the book, the reader will gain a deeper physical understanding of failure mechanisms in electronic materials and devices; acquire skills in the mathematical handling of reliability data; and better appreciate future technology trends and the reliability issues they raise.

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