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PHYS-314: Quantum physics II
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Lectures in this course (79)
Introduction to Group Representations Theory
Introduces group representations theory in quantum physics, covering symmetries, perturbation theory, and energy state degeneracy.
Group Theory: Reducible and Irreducible Representations
Explores group theory in quantum physics, emphasizing reducible and irreducible representations, conservation laws, and group properties.
Wigner Theorem; Translation Symmetry
Explores the Wigner theorem, translation symmetry, eigenstates, and wave functions in quantum physics.
Continuous Symmetries; Parity Symmetry
Explores symmetry operations in quantum physics, including rotations and translations.
Time Reversal Symmetry
Explores time reversal symmetry, invariance under parity, eigenstates, and spin in quantum physics.
Vector Transformation and Tense
Explores the transformation of vectors and tensors, including rotations and representations in quantum physics.
Spherical Tensors and Wigner-Eckart Theorem
Covers the transformation of vectors and tensors in quantum physics.
Elements of Lie Groups and Algebras
Explores the transformation of vectors and tensors in quantum physics, emphasizing Lie groups and algebras.
Irreducible Representations of Rotations Group
Explores irreducible representations of the rotations group and their mathematical properties.
Identical Particles: Fermions
Explores quantum physics concepts related to identical fermions and bosons.
Identical Particles Systems: Bosons
Covers systems with identical particles, focusing on bosons and their properties.
Variational Principle: Quantum Physics II
Covers the variational principle in quantum physics for approximating energy levels.
EPR Paradox and Bell's Theorem
Explores quantum entanglement, hidden variables, and challenges to local realism.
Hartree-Fock Equations for N Fermions
Explores Hartree-Fock equations, variational principles, excited states, and quantum physics concepts.
Hartree-Fock Equations for N Fermions
Discusses the minimization of the Hartree-Fock functional for N fermions and the variational principle in quantum physics.
Second Quantification of Fermions
Explores the second quantification of fermions, including ventilation operators and annihilation rates.
Quantum Bosons: Second Quantification
Explores perturbation theory, proper states, undegenerated states, and problem-solving in quantum bosons.
Quantum Physics II: Time-Independent Perturbation Theory
Explores time-independent perturbations in quantum physics, covering variational principle and Fourier series.
Time-Independent Perturbation Theory: Degenerate Case
Explores time-independent perturbation theory in the degenerate case within quantum physics.
Time-Independent Perturbation Theory: Degenerate Case
Covers the theory of time-independent perturbations in the degenerate case.
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