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Conduction of Heat in Solids. Recommend Documents. Betts Depart Your name. Close Send. Remember me Forgot password? Our partners will collect data and use cookies for ad personalization and measurement. Next the spin-orbit interaction in a crystal-field picture is introduced including the effective angular momentum of the t 2g sub shell.

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In the final part this is used to create a tight binding Hamiltonian which can describe Rashba splitting and topological states of mater. Spin Orbit [ User Tools Log In. Theory of spectroscopy, dynamics and numerical methods for complex materials. Classical Harmonic Oscillator Mathematica notebook. Classical Harmonic Oscillator pdf.

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Internal information. Privacy policy. During this workshop, we will teach a group of PhD students and Post-Docs how to calculate several spectroscopies on different materials, ranging from strongly correlated to weakly correlated, using density functional theory, crystal-field theory, ligand field theory and the combination of density functional theory and the later methods.

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The main code used will be Quanty www. The binding of an Oxygen atom in a red blood-cell, the ultrafast switching of magnetic domains in your hard disk or the Catalytic reaction of nitrogen to ammonia in the vicinity of iron oxides all require the understanding of the electronic dynamics on the quantum scale. With the recent advance of experimental methods aimed to visualize these dynamical processes there is a need for theory that can describe quantum dynamics in atoms molecules and solids governing many orders of magnitude in time scales, from atto seconds to days. Although a full quantitative prediction of the three aforementioned processes is still out of reach using a combination of different theories and approximations we can get quite a good description in many cases.

In these lectures we will introduce some concepts of electron dynamics.

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Exemplified by several model calculations and take home examples we will show how the dynamics on the quantum scale can be described in solid state materials. We will draw parallels between the classical and quantum regime when possible.

Our main starting point will be response theory showing the relation between excitation spectra and dynamics. We will introduce concepts like natural line-width of an excitation and how the related quasiparticle will decay once excited.