„Applied Solid State Physics” változatai közötti eltérés

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(Új oldal, tartalma: „==General data== *Course name: Applied Solid State Physics *Course code: BMETE11AF11; *Requirements: 2/0/0/V/2; *Semester: Fall; *Language: English; *Responsible teac…”)
 
(Topics)
14. sor: 14. sor:
 
==Topics==
 
==Topics==
  
1. Quantum distributions: Bose-Einstein and Fermi-Dirac statistics
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# Semiconductor physics: band structure, electrons and holes, impurity doping, statistical mechanics of semiconductors. (Steven H. Simon - The Oxford Solid State Basics, Chapter 17)
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# Semiconductor devices: band structure engineering, p-n junction and the transistor. (Steven H. Simon - The Oxford Solid State Basics, Chapter 18)
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# Magnetism: (Steven H. Simon - The Oxford Solid State Basics, Chapter 20-22)
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2. Heat capacity of solids: Einstein's model and Debye's model
 
2. Heat capacity of solids: Einstein's model and Debye's model

A lap 2019. május 21., 20:51-kori változata

General data

  • Course name: Applied Solid State Physics
  • Course code: BMETE11AF11;
  • Requirements: 2/0/0/V/2;
  • Semester: Fall;
  • Language: English;
  • Responsible teacher: Szabolcs Csonka, associate professor
  • Lecturer: Máté Vigh, assistant professor
  • Department: Department of Physics
  • Programme: BSc Physics (mandatory) and MSc Physics (recommended for students without preliminary studies in solid state physics)
  • Exam: Written/Oral exam at the end of semester

Topics

  1. Semiconductor physics: band structure, electrons and holes, impurity doping, statistical mechanics of semiconductors. (Steven H. Simon - The Oxford Solid State Basics, Chapter 17)
  1. Semiconductor devices: band structure engineering, p-n junction and the transistor. (Steven H. Simon - The Oxford Solid State Basics, Chapter 18)


  1. Magnetism: (Steven H. Simon - The Oxford Solid State Basics, Chapter 20-22)


2. Heat capacity of solids: Einstein's model and Debye's model

3. Electrons in metals: Drude theory

4. More electrons in metals: Sommerfeld (free electron) theory

5. One-dimensional model of compressibility, sound and thermal expansion

6. Vibrations of a one-dimensional atomic chain

7. Geometry of solids: crystal structure, lattice, reciprocal lattice, Brillouin-zone

8. X-ray diffraction: Miller indices, Laue and Bragg conditions

9. X-ray diffraction II.: systematic absences, powder diffraction

10. Electrons in solids: nearly free electron model, Bloch's theorem, electronic bands

11. Electrons in solids II.: tight binding model

Literature

Steven H. Simon: The Oxford Solid State Basics

N. W. Ashcroft and N. D. Mermin: Solid State Physics

C. Kittel: Introduction to Solid State Physics