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Quantum Mechanics: Semiclassical Approximation
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Related lectures (32)
Spectral Density: Semiclassical Approximation
Covers the semiclassical approximation for spectral density and the Bohr-Sommerfeld quantization condition.
Quantum Mechanics: Bound States and Tunneling
Explores turning points, quantization, and tunneling in quantum mechanics.
Quantum Mechanics: Bound-State Problems
Analyzes bound-state problems, Bohr-Sommerfeld quantization, and tunneling through potential barriers in quantum mechanics.
Quantum Mechanics: Wave Functions
Covers wave functions, De Broglie wavelength, and quantization in quantum mechanics.
Instantons: Perturbation Theory and Semiclassical Approximations
Discusses instantons in quantum mechanics and their role in capturing missed effects.
Quantum Mechanics: Atomic Spectra
Explores quantum mechanics principles, focusing on atomic spectra and the failures of classical mechanics to explain them.
Connected Diagrams: Free Energy and Semiclassical Propagator
Explains free energy as a sum over connected diagrams and the semiclassical propagator in quantum field theory.
Time-dependent quantum mechanics
Explores time-dependent quantum mechanics, perturbation theory, and atom-field interactions.
Time-Independent Perturbation Theory: Degenerate Case
Explores time-independent perturbation theory in the degenerate case within quantum physics.
Path Integral Formalism and Quantum Thermodynamics
Explores the path integral formalism in quantum mechanics and its application in quantum thermodynamics.
Quantum Mechanics: Fundamentals and Applications
Explores quantum mechanics fundamentals, including observables, momentum, Schrödinger equation, hydrogen atom, spin, and quantum information.
Advanced General Chemistry I
Explores the quantization of energy levels, wave-particle duality, and uncertainty principle in advanced general chemistry.
Classical and Quantum Mechanics: Foundations and Applications
Explores classical and quantum mechanics, covering observables, momentum, Hamiltonian, and the Schrödinger equation, as well as quantum chemistry and the Schrödinger's cat experiment.
Non-perturbative Effects in Quantum Physics
Explores non-perturbative effects in quantum physics, focusing on instantons in the double well potential.
Atomic Structure: Bohr Model
Covers the historical development and key features of the Bohr model in atomic structure, contrasting it with the Schrödinger model.
Quantum Mechanics: Path Integral Methods
Covers the basics of path integral in quantum mechanics and its application to free particles.
Quantum to Classical Mechanics: MD & MC Simulations
Covers Molecular Dynamics and Monte Carlo Simulations, transitioning from Quantum to Classical Mechanics in computational chemistry.
Advanced General Chemistry I
Introduces the historical and modern understanding of atoms, quantum mechanics, and the electromagnetic spectrum.
Atomic Structure: Quantum Numbers and Orbitals
Explores atomic structure, quantum numbers, orbitals, and the uncertainty principle in defining electron states and shapes.
Jarzynski Equation and Quantum Circuits
Explores the Jarzynski equation and the quantization of electrical circuits in quantum harmonic oscillators.
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