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  • Course Information
  • Course Title Code Semester Laboratory+Practice (Hour) Pool Type ECTS
    Quantum Mechanics II FİZ402 SPRING 5+0 Faculty C 6
    Learning Outcomes
    1-Know the basic concepts of quantum mechanics.
    2-Determine the properties of a particle or a system with spin.
    3-Apply quantum mechanics to experimental systems.
    4-Learn and apply approximation methods.
    Prerequisites -
    Language of Instruction Turkish
    Responsible Prof. Dr. Halit ALTUNTAŞ
    Instructors -
    Assistants Research Assistants of Physics Department
    Resources K1 L. I. Schiff, Quantum Mechanics, 1949, McGraw-Hill K2 K. T. Hecht, Quantum Mechanics, 2000, Springer.
    Supplementary Book YK1 J. L. Basdevant and J. Dalibard, Quantum Mechanics, 2002, Springer-Verlag. YK2 J. J. Sakurai, Modern Quantum Mechanics, 1994, Addison-Wesley.
    Goals To ensure students have advanced knowledge about quantum mechanics and advanced ability to comment on related systmes.
    Content Commutation relations, Eigenvalue and eigen functions; Spin angular momentum and matrix representation, The movement of particles with spin in a magnetic field; Total angular momentum, Angular momentum coupling ; Approximation methods for stationary problems, Perturbation theory for non-degenerate case; Perturbation theory for degenerate case; First order Stark effect in Hydrojen, Perturbed energy levels; First order Stark effect in Hydrogen, Perturbed energy levels; Born approximation, Green functions, Scattering cross section; Perturbation application of partial waves, Phase shifts, Scattering from a square-well potential; Validity of Born approximation, Scattering from a screened Coulomb field; Variation method, The expectation value of energy, Application to the excited states; Ground state of Helium, Electron interaction energy; Van der Waals interaction, Perturbation calculation, Variation calculation; Van der Waals interaction, Perturbation calculation, Variation calculation
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