Introduces nuclear reactor physics, covering nucleus composition, binding energy, and radioactivity.
Explores mass-energy equivalence, E=mc², mass defect, and relativistic dynamics.
Covers the basics of nuclear physics, including reactor physics, neutron interactions, fission, fusion, and radioactivity.
Covers exercises on nuclear physics basics, including binding energy, fission reactions, and decay activities.
Covers the principles and applications of X-ray Photoelectron Spectroscopy for surface characterization.
Covers the basics of nuclear physics, including nucleus composition, binding energy, mass defect, nuclear reactions, and radioactivity.
Explores nuclear fuel, energy density, reactivity, and fission cross-sections for isotopes, as well as the characteristics of desirable nuclear fuel elements.
Explores X-ray and Ultraviolet Photoelectron Spectroscopy principles, applications, and case studies on TiO2 coatings and doped films.
Explores X-ray Photoelectron Spectroscopy fundamentals, applications, challenges, and sputtering techniques for surface analysis.
Introduces special relativity, covering time dilation, mass-energy equivalence, and thermodynamics, including ideal gas laws and phase transitions.