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תורת החומר המעובה 1
Condensed Matter Theory 1 |
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מדעים מדויקים | פיסיקה ואסטרונומיה | |||||||||||||||||||||||||||||||||
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Condensed Matter Theory – I
Syllabus
Introduction (12 hours):
interactions in condensed matter (gas, liquid, crystal), conductivity of metals (Drude model), charge screening in metals and plasma, diffusion and mob
Part I (12 hours):
Semi-classical dynamics of electrons in metals in electric and magnetic fields, Fermi-surface of electrons in metals, closed and open trajectories, Landau quantization in metals, density of states in magnetic field, Boltzmann equation (t-approximation), electrical and thermal conductivities, Onsager rules, thermoelectric phenomena, normal and anomalous skin-effect, ineffectiveness concept, Boltzmann equation for resonance phenomena, Azbel-Kaner resonance, collisionless plasma, plasma frequency, longitudinal permittivity and waves, Landau damping.
Part II (8 hours):
Magnetism of normal metals, paramagnetism Pauli, Landau diamagnetism, quantum osc
Part III (16 hours):
Electrodynamics of superconductors (London equation), field penetration depth, free energy of superconductors (London approximation), gauge invariant current density and flux quantization, Ginzburg-Landau equation, coherence length, surface tension of superconductor to normal states interface, proximity effect, Abrikosov vortex, energy of Abrikosov vortex, first critical field, Lorentz force, pinning force, conductivity of flux flow state, Josephson effect, long Josephson junctions, Josephson vortices, Josephson length and frequency, Cooper pairs, energy of Cooper pairs, Bogoliubov – de Gennes equations, Andreev reflection and quantization, BCS theory, self-consistence equation, pairing potential.
Part IV (6 hours):
Langevine equation, fluctuation-dissipation theorem (classical and quantum limits), sound wave in an ideal gas of phonons (second sound), Fokker – Planck equation (diffusion in momentum space).
Part V (6 hours):
Electron – electron interaction, structure of low energy spectrum of degenerate Fermi system, Fermi liquid, Landau theory of Fermi liquid, Landau f – function, susceptib
Part VI (4 hours):
Nonlinear mechanics of a crystal, edge and screw dislocations, plastic flow of dislocations, energy of moving dislocations, size dependence of dislocation energy, shock wave in one dimensional crystal.
Textbooks
J. M. Ziman, ”Theory of Solids”, Cambridge, University Press, 1972.
A.A. Abrikosov, ”Fundamentals of the Theory of Metals”, New York, Academic, 1972.
M. Marder, ”Condensed Matter Physics”, New York, John W
Ne
L. M. Sander, "Advanced Condensed Matter Physics", Cambridge, University Press, 2009.
P. M. Chaikin and T. C. Lubensky, "Principles of Condensed Matter Physics", Cambridge, University Press, 2010.
Introduction :
interactions in condensed matter (gas, liquid, crystal), conductivity of metals (Drude model), charge screening in metals and plasma, diffusion and mob
Part I
Semi-classical dynamics of electrons in metals in electric and magnetic fields, Fermi-surface of electrons in metals, closed and open trajectories, Landau quantization in metals, density of states in magnetic field, Boltzmann equation (t-approximation), electrical and thermal conductivities, Onsager rules, thermoelectric phenomena, normal and anomalous skin-effect, ineffectiveness concept, Boltzmann equation for resonance phenomena, Azbel-Kaner resonance, collisionless plasma, plasma frequency, longitudinal permittivity and waves, Landau damping.
Part II
Magnetism of normal metals, paramagnetism Pauli, Landau diamagnetism, quantum osc
Part III
Electrodynamics of superconductors (London equation), field penetration depth, free energy of superconductors (London approximation), gauge invariant current density and flux quantization, Ginzburg-Landau equation, coherence length, surface tension of superconductor to normal states interface, proximity effect, Abrikosov vortex, energy of Abrikosov vortex, first critical field, Lorentz force, pinning force, conductivity of flux flow state, Josephson effect, long Josephson junctions, Josephson vortices, Josephson length and frequency, Cooper pairs, energy of Cooper pairs, Bogoliubov – de Gennes equations, Andreev reflection and quantization, BCS theory, self-consistence equation, pairing potential.
Part IV
Langevine equation, fluctuation-dissipation theorem (classical and quantum limits), sound wave in an ideal gas of phonons (second sound), Fokker – Planck equation (diffusion in momentum space).
Part V
Electron – electron interaction, structure of low energy spectrum of degenerate Fermi system, Fermi liquid, Landau theory of Fermi liquid, Landau f – function, susceptib
Part VI
Nonlinear mechanics of a crystal, edge and screw dislocations, plastic flow of dislocations, energy of moving dislocations, size dependence of dislocation energy, shock wave in one dimensional crystal.
Textbooks
J. M. Ziman, ”Theory of Solids”, Cambridge, University Press, 1972.
A.A. Abrikosov, ”Fundamentals of the Theory of Metals”, New York, Academic, 1972.
M. Marder, ”Condensed Matter Physics”, New York, John W
Ne
L. M. Sander, "Advanced Condensed Matter Physics", Cambridge, University Press, 2009.
P. M. Chaikin and T. C. Lubensky, "Principles of Condensed Matter Physics", Cambridge, University Press, 2010.
2. Semi-classical dynamics of electrons in crystals in electric and magnetic fields, Fermi-surface, electrical and thermal conductivities, Onsager relations, thermoelectric phenomena, Boltzmann equation for resonance phenomena, Azbel-Kaner resonance
3. Isotropic ferromagnets, spin waves, domains, surface tension of domain walls.
4. Electron-phonon interaction, electrical conductivity at low temperatures, Cooper phenomenon, BCS theory, the mystery of high-temperature superconductivity
5. Dielectrics, optical properties of crystals, point-like crystallographic defects.
6. Electron-electron interaction in normal metals, screening of electric field, Fermi gas versus Fermi-liquid, Landau theory of Fermi-liquid, Landau f-function, thermodynamics and kinetics of Fermi-liquid, the mystery of spin waves in metals.
7. Mesoscopics, electrons in disordered systems, transport phenomena, effect of sample boundaries, weak localization, variable range hopping, quantum Hall-effect: