SCCI Digital Library and Forum

MIT

S# Lecture Course Institute Instructor Discipline
6126
Autoionization transitions (M-I-T)
Lecture 10: Fermi's Golden Rule (M-I-T) MIT Prof. Barton Zwiebach Basic and Health Sciences
6127
Box regularization: density of states for the continuum (M-I-T)
Lecture 10: Fermi's Golden Rule (M-I-T) MIT Prof. Barton Zwiebach Basic and Health Sciences
6128
Integrating over the continuum to find Fermi's Golden Rule (M-I-T)
Lecture 10: Fermi's Golden Rule (M-I-T) MIT Prof. Barton Zwiebach Basic and Health Sciences
6129
Transitions with a constant perturbation (M-I-T)
Lecture 10: Fermi's Golden Rule (M-I-T) MIT Prof. Barton Zwiebach Basic and Health Sciences
6130
Harmonic transitions between discrete states (M-I-T)
Lecture 11: Fermi's Golden Rule for Harmonic Transitions (M-I-T) MIT Prof. Barton Zwiebach Basic and Health Sciences
6131
Ionization of hydrogen: conditions of validity, initial and final states (M-I-T)
Lecture 11: Fermi's Golden Rule for Harmonic Transitions (M-I-T) MIT Prof. Barton Zwiebach Basic and Health Sciences
6132
Ionization of Hydrogen: Matrix Element for Transition (M-I-T)
Lecture 11: Fermi's Golden Rule for Harmonic Transitions (M-I-T) MIT Prof. Barton Zwiebach Basic and Health Sciences
6133
Transition rates for stimulated emission and absorption processes (M-I-T)
Lecture 11: Fermi's Golden Rule for Harmonic Transitions (M-I-T) MIT Prof. Barton Zwiebach Basic and Health Sciences
6134
Atom-light interactions: dipole operator (M-I-T)
Lecture 12: Hydrogen Ionization (completed). Light and Atoms (M-I-T) MIT Prof. Barton Zwiebach Basic and Health Sciences
6135
Einstein's argument: B and A coefficients (M-I-T)
Lecture 12: Hydrogen Ionization (completed). Light and Atoms (M-I-T) MIT Prof. Barton Zwiebach Basic and Health Sciences
6136
Einstein's Argument: the Need for Spontaneous Emission (M-I-T)
Lecture 12: Hydrogen Ionization (completed). Light and Atoms (M-I-T) MIT Prof. Barton Zwiebach Basic and Health Sciences
6137
Ionization Rate for Hydrogen: Final Result (M-I-T)
Lecture 12: Hydrogen Ionization (completed). Light and Atoms (M-I-T) MIT Prof. Barton Zwiebach Basic and Health Sciences
6138
Light and Atoms with Two Levels, Qualitative Analysis (M-I-T)
Lecture 12: Hydrogen Ionization (completed). Light and Atoms (M-I-T) MIT Prof. Barton Zwiebach Basic and Health Sciences
6139
Charged particles in EM fields: potentials and gauge invariance (M-I-T)
Lecture 13: Light and Atoms (continued). Charged Particles in Electromagnetic Fields (M-I-T) MIT Prof. Barton Zwiebach Basic and Health Sciences
6140
Charged particles in EM fields: Schrodinger equation (M-I-T)
Lecture 13: Light and Atoms (continued). Charged Particles in Electromagnetic Fields (M-I-T) MIT Prof. Barton Zwiebach Basic and Health Sciences
6141
Einstein's B and A coefficients determined. Lifetimes and selection rules (M-I-T)
Lecture 13: Light and Atoms (continued). Charged Particles in Electromagnetic Fields (M-I-T) MIT Prof. Barton Zwiebach Basic and Health Sciences
6142
Transition rates induced by thermal radiation (continued) (M-I-T)
Lecture 13: Light and Atoms (continued). Charged Particles in Electromagnetic Fields (M-I-T) MIT Prof. Barton Zwiebach Basic and Health Sciences
6143
Transition rates induced by thermal radiation (M-I-T)
Lecture 13: Light and Atoms (continued). Charged Particles in Electromagnetic Fields (M-I-T) MIT Prof. Barton Zwiebach Basic and Health Sciences
6144
Gauge invariance of the Schrodinger Equation (M-I-T)
Lecture 14: Charged Particles in Electromagnetic Fields (continued) (M-I-T) MIT Prof. Barton Zwiebach Basic and Health Sciences
6145
Landau levels (continued). Finite sample (M-I-T)
Lecture 14: Charged Particles in Electromagnetic Fields (continued) (M-I-T) MIT Prof. Barton Zwiebach Basic and Health Sciences
6146
Particle in a constant magnetic field: Landau levels (M-I-T)
Lecture 14: Charged Particles in Electromagnetic Fields (continued) (M-I-T) MIT Prof. Barton Zwiebach Basic and Health Sciences
6147
Quantization of the magnetic field on a toru (M-I-T)
Lecture 14: Charged Particles in Electromagnetic Fields (continued) (M-I-T) MIT Prof. Barton Zwiebach Basic and Health Sciences
6148
Classical adiabatic invariant (M-I-T)
Lecture 15: Adiabatic Approximation (M-I-T) MIT Prof. Barton Zwiebach Basic and Health Sciences
6149
Classical analog: oscillator with slowly varying frequency (M-I-T)
Lecture 15: Adiabatic Approximation (M-I-T) MIT Prof. Barton Zwiebach Basic and Health Sciences
6150
Instantaneous energy eigenstates and Schrodinger equation (M-I-T)
Lecture 15: Adiabatic Approximation (M-I-T) MIT Prof. Barton Zwiebach Basic and Health Sciences