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Titlebook: Electronic Properties of Materials; An Introduction for Rolf E. Hummel Textbook 19851st edition Springer-Verlag Berlin Heidelberg 1985 Wer

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書目名稱Electronic Properties of Materials
副標題An Introduction for
編輯Rolf E. Hummel
視頻videohttp://file.papertrans.cn/307/306382/306382.mp4
圖書封面Titlebook: Electronic Properties of Materials; An Introduction for  Rolf E. Hummel Textbook 19851st edition Springer-Verlag Berlin Heidelberg 1985 Wer
描述The present book on electrical, optical, magnetic and thermal properties of materials is in many aspects different from other introductory texts in solid state physics. First of all, this book is written for engineers, particularly materials and electrical engineers who want to gain a fundamental under- standing of semiconductor devices, magnetic materials, lasers, alloys, etc. Second, it stresses concepts rather than mathematical formalism, which should make the presentation relatively easy to understand. Thus, this book provides a thorough preparation for advanced texts, monographs, or special- ized journal articles. Third, this book is not an encyclopedia. The selection oftopics is restricted to material which is considered to be essential and which can be covered in a 15-week semester course. For those professors who want to teach a two-semester course, supplemental topics can be found which deepen the understanding. (These sections are marked by an asterisk [*]. ) Fourth, the present text leaves the teaching of crystallography, X-ray diffrac- tion, diffusion, lattice defects, etc. , to those courses which specialize in these subjects. As a rule, engineering students learn this
出版日期Textbook 19851st edition
關(guān)鍵詞Werkstoff; Werkstoffe; X-ray; ceramics; electronics; energy; laser; magnetism; material; metals; polymer; semic
版次1
doihttps://doi.org/10.1007/978-3-662-02424-9
isbn_ebook978-3-662-02424-9
copyrightSpringer-Verlag Berlin Heidelberg 1985
The information of publication is updating

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Brigitte Stangl,Christian Weismayer This statement is true for light as well as for matter. For example, light can be described as having wave properties or, alternately, particle properties. A particle, or quantum of . is called a . whose energy is . where . is the Planck constant and ..
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https://doi.org/10.1007/978-3-7091-1142-0 cases an outer, i.e., a valence, electron. However, in a solid of one cubic centimeter at least 10. electrons can be found. In this section we shall describe how these electrons are distributed among the available energy levels. It is impossible to calculate the exact place and the kinetic energy o
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Dimitrios Buhalis,Marie-Kristin Foerstescovered around 600 BC that a piece of amber, having been rubbed with a piece of cloth, attracted feathers and other light particles. Very appropriately, the word . was later coined by incorporating the Greek word . which means ..
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https://doi.org/10.1007/978-3-319-28231-2ics industry, for example as handles for a variety of tools, as coatings of wires, or for casings of electrical equipment. Most polymeric materials have the required insulating properties and have been used for decades for this purpose. It came, therefore, as a surprise when it was discovered that s
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Maurilio Zuccalà,Emiliano Sergio Vergametals were already used in ancient times for mirrors and jewelry. The color was utilized 4000 years ago by the ancient Chinese as a guide to determine the composition of the melt of copper alloys: the hue of a preliminary cast indicated whether the melt, from which bells or mirrors were to be made,
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Christian Weismayer,Ilona Pezenkae continuum theory considers only macroscopic quantities and interrelates experimental data. No assumptions are made about the structure of matter when formulating equations. Thus, the conclusions which have been drawn from the empirical laws in Chapter 10 should have general validity as long as not
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Adriana Wacker,Aleksander Grothh equations which reproduce the optical spectra of solids reasonably well. Unfortunately, the treatment had one flaw: For calculation and interpretation of the infrared absorption we used the concept that electrons in metals are free; whereas, the absorption bands in the visible and ultraviolet spec
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