A termék adatai:
ISBN13: | 9780198920984 |
ISBN10: | 0198920989 |
Kötéstípus: | Keménykötés |
Terjedelem: | 640 oldal |
Méret: | 253x195x40 mm |
Súly: | 1490 g |
Nyelv: | angol |
Illusztrációk: | 434 line illustrations and halftones |
686 |
Témakör:
Electrical Properties of Materials
Kiadás sorszáma: 11
Kiadó: OUP Oxford
Megjelenés dátuma: 2024. november 12.
Normál ár:
Kiadói listaár:
GBP 132.00
GBP 132.00
Az Ön ára:
62 370 (59 400 Ft + 5% áfa )
Kedvezmény(ek): 10% (kb. 6 930 Ft)
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Rövid leírás:
Electrical properties of materials are fundamental to many devices encountered in daily life, ranging from semiconductors used in microelectronics to magnetic materials in the motors of electric cars. This book explains the phenomena, reviews the best modern materials, and presents the most relevant applications.
Hosszú leírás:
The electrical properties of materials are fundamental to many devices encountered in daily life and in today's industry, ranging from the semiconductors used in microelectronics to the dielectric materials in liquid crystal displays, the magnetic materials in the motors of electric cars and the superconducting materials in MRI scanners. All stem from the response of electrons to electric and magnetic fields.
This book explains the phenomena, reviews the best materials, and presents the most relevant applications. The behaviour of electrons in atoms, liquids, solids, and periodic crystals is described, and the possibilities of new artificial materials are discussed. In themselves, electrons are intriguing, sometimes displaying particle-type and other times wave-type behaviour. Full understanding of wave properties requires quantum mechanics, often seen as a barrier due to the unfamiliarity of the concepts involved and the complexity of the mathematical apparatus needed. A key aim is to overcome these difficulties. Underpinning theory is explained as simply as possible.
Classical and quantum mechanics are used as appropriate, in each case giving a full development and often presenting complementary viewpoints. Examples are presented in a comprehensive set of problems. This flexible approach allows full understanding both of fundamentals (for example, the properties of atoms in different columns of the periodic table) and of applications (the design of a new laser based on an artificially engineered band structure). The contents have been successfully refined over more than 50 years and are especially suitable for undergraduates and postgraduates in Materials and Electrical Engineering.
Review from previous edition An informal and highly accessible writing style, a simple treatment of mathematics, and a clear guide to applications have made this book a classic text in electrical and electronic engineering. Students will find it both readable and comprehensive.
This book explains the phenomena, reviews the best materials, and presents the most relevant applications. The behaviour of electrons in atoms, liquids, solids, and periodic crystals is described, and the possibilities of new artificial materials are discussed. In themselves, electrons are intriguing, sometimes displaying particle-type and other times wave-type behaviour. Full understanding of wave properties requires quantum mechanics, often seen as a barrier due to the unfamiliarity of the concepts involved and the complexity of the mathematical apparatus needed. A key aim is to overcome these difficulties. Underpinning theory is explained as simply as possible.
Classical and quantum mechanics are used as appropriate, in each case giving a full development and often presenting complementary viewpoints. Examples are presented in a comprehensive set of problems. This flexible approach allows full understanding both of fundamentals (for example, the properties of atoms in different columns of the periodic table) and of applications (the design of a new laser based on an artificially engineered band structure). The contents have been successfully refined over more than 50 years and are especially suitable for undergraduates and postgraduates in Materials and Electrical Engineering.
Review from previous edition An informal and highly accessible writing style, a simple treatment of mathematics, and a clear guide to applications have made this book a classic text in electrical and electronic engineering. Students will find it both readable and comprehensive.
Tartalomjegyzék:
The electron as a particle
The electron as a wave
The electron
The hydrogen atom and the periodic table
Bonds
The free electron theory of metals
The band theory of solids
Semiconductors
Principles of semiconductor devices
Dielectric materials
Magnetic materials
Lasers
Optoelectronics
Superconductivity
Metamaterials
Epilogue
Appendix I: Organic semiconductors
Appendix II: Nobel laureates Appendix V: Thermoelectricity
Appendix III: Physical constants
Appendix IV: Variational calculus. Derivation of Euler s equation
Appendix V: Thermoelectricity
Appendix VI: Principles of the operation of computer memories
Appendix VII: Medical imaging
Appendix VIII: Suggestions for further reading
Answers to exercises
The electron as a wave
The electron
The hydrogen atom and the periodic table
Bonds
The free electron theory of metals
The band theory of solids
Semiconductors
Principles of semiconductor devices
Dielectric materials
Magnetic materials
Lasers
Optoelectronics
Superconductivity
Metamaterials
Epilogue
Appendix I: Organic semiconductors
Appendix II: Nobel laureates Appendix V: Thermoelectricity
Appendix III: Physical constants
Appendix IV: Variational calculus. Derivation of Euler s equation
Appendix V: Thermoelectricity
Appendix VI: Principles of the operation of computer memories
Appendix VII: Medical imaging
Appendix VIII: Suggestions for further reading
Answers to exercises