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Delves into semiconductor laser rate equations, steady state solutions, dynamic behavior, and applications in optical communications.
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Explores the physics of photonic semiconductor devices, including laser diodes, VCSELs, high-beta nanolasers, and quantum cascade lasers.
Electron-Photon Interaction: Quantum Description
Covers the quantum description of electron-photon interaction, absorption, recombination rates, and photoluminescence in semiconductors.
Optical Transitions in Semiconductors
Explores the K-Selection Rule, energetic requirements, and optical properties of semiconductors, including photon absorption and emission.
Evolution of Density Matrices
Covers the evolution of density matrices in quantum optics, focusing on quantum channels and amplitude damping.
Einstein Coefficients and Amplification
Explores Einstein coefficients, population inversion, and light amplification in laser technology.
Laser Architecture: Quantum Dynamics and Stabilization
Explores laser technology, quantum dynamics, stimulated emission, and photon stabilization in laser resonators.
Thermal radiation and Einstein coefficients
Explores the failure of classical theory in describing thermal radiation, Planck's radiation law, and Einstein's quantum model.
Time-dependent Perturbation Theory: Fermi's Golden Rule
Covers time-dependent perturbation theory, focusing on Fermi's Golden Rule and spontaneous emission.
Excited Atom Emission
Explores an atom in an excited state, emission of photons, and the uncertainty principle.

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