Modern and classic experiments performed with up-to-date techniques. Course complements 400-level physics courses, and satisfies the Integrative Experience requirement for BA-Physics and BS-Physics majors
Modern and classic experiments performed with up-to-date techniques. Course complements 400-level physics courses, and satisfies the Integrative Experience requirement for BA-Physics and BS-Physics majors
Thermodynamic and statistical descriptions of many particle systems. Topics include: laws of thermodynamics, entropy, free energies, chemical potential, canonical and grand canonical ensembles, quantum statistics, phase transitions, and application to various systems, including classical and quantum gases and solids.
Thermodynamic and statistical descriptions of many particle systems. Topics include: laws of thermodynamics, entropy, free energies, chemical potential, canonical and grand canonical ensembles, quantum statistics, phase transitions, and application to various systems, including classical and quantum gases and solids.
Thermodynamic and statistical descriptions of many particle systems. Topics include: laws of thermodynamics, entropy, free energies, chemical potential, canonical and grand canonical ensembles, quantum statistics, phase transitions, and application to various systems, including classical and quantum gases and solids.
Advanced undergraduate course in Electricity and Magnetism including: review of vector algebra and calculus, electrostatics in vacuum, electrostatics in matter, magnetostatics in vacuum, magnetostatics in matter, electrodynamics, Maxwell's equations, electromagnetic waves, potentials and fields, and radiation.
Advanced undergraduate course in Electricity and Magnetism including: review of vector algebra and calculus, electrostatics in vacuum, electrostatics in matter, magnetostatics in vacuum, magnetostatics in matter, electrodynamics, Maxwell's equations, electromagnetic waves, potentials and fields, and radiation.
Advanced undergraduate course in Electricity and Magnetism including: review of vector algebra and calculus, electrostatics in vacuum, electrostatics in matter, magnetostatics in vacuum, magnetostatics in matter, electrodynamics, Maxwell's equations, electromagnetic waves, potentials and fields, and radiation.
We will discuss a variety of topics related to professional, career and personal success and satisfaction. Examples of these topics include but are not limited to, job searching skills, time/distraction management, creativity/innovation, financial models for research and science and legal structure for intellectual property such as patents, etc.