TitleQuantum Theory of Conducting Matter : Newtonian Equations of Motion for a Bloch Electron
Author(s)Fujita, Shigeji;Ito, Kei
PublicationNew York, NY, Springer New York, 2007.
DescriptionXX, 244 p. 80 illus : online resource
Abstract NoteQuantum Theory of Conducting Matter: Newtonian Equations of Motion for a Bloch Electron targets scientists, researchers and graduate-level students focused on experimentation in the fields of physics, chemistry, electrical engineering, and material sciences. It is important that the reader have an understanding of dynamics, quantum mechanics, thermodynamics, statistical mechanics, electromagnetism and solid-state physics. Many worked-out problems are included in the book to aid the reader's comprehension of the subject. The Bloch electron (wave packet) moves by following the Newtonian equation of motion. Under an applied magnetic field B the electron circulates around the field B counterclockwise or clockwise depending on the curvature of the Fermi surface. The signs of the Hall coefficient and the Seebeck coefficient are known to give the sign of the major carrier charge. For alkali metals, both are negative, indicating that the carriers are "electrons." These features arise from the Fermi surface difference. The authors show an important connection between the conduction electrons and the Fermi surface in an elementary manner in the text. No currently available text explains this connection. The authors do this by deriving Newtonian equations of motion for the Bloch electron and diagonalizing the inverse mass (symmetric) tensor. The currently active areas of research, high-temperature superconductivity and Quantum Hall Effect, are important subjects in the conducting matter physics, and the authors plan to follow up this book with a second, more advanced book on superconductivity and the Quantum Hall Effect.
ISBN,Price9780387741031
Keyword(s)1. EBOOK 2. EBOOK - SPRINGER 3. Elementary particles (Physics) 4. Elementary Particles, Quantum Field Theory 5. QUANTUM COMPUTERS 6. QUANTUM FIELD THEORY 7. Quantum Information Technology, Spintronics 8. QUANTUM OPTICS 9. QUANTUM PHYSICS 10. SPINTRONICS
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Accession#  Call#StatusIssued ToReturn Due On Physical Location
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