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Lecture
Electromagnetic Fields in Medium
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Related lectures (55)
Lorentz Covariant Formulation: Maxwell Equations
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Covers Lorentz transformations, Maxwell equations, and charge conservation in Lorentz invariant physics.
Maxwell's Equations and E-M Waves in Matter
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Explores the interaction between electromagnetic waves and matter, including polarization effects and energy conservation.
Magnetodynamics: Maxwell Equations and Induction Laws
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Explores magnetodynamics, Maxwell equations, Faraday's law, and induction experiments.
Electromagnetic Fields in Medium
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Explores electromagnetic fields in a medium, focusing on macroscopic and microscopic fields and their sources.
Optical Tweezers: Basics and Applications
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Covers the basics of optical tweezers and their applications in microscopy, manipulation, and spectroscopy, as well as the alignment of molecules using laser pulses.
Dielectric Materials: Polarization and Capacitors
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Explores dielectric materials, polarization, and capacitors, focusing on bound charges and the impact of dielectric constant.
Maxwell's Equations in Polarized Matter: Lorentz Transformation
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Explores Maxwell's equations in polarized matter and fields transformation under different frames.
Constitutive Relations in Materials
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Covers constitutive relations in materials, induced effects, related charges, and non-linear responses.
Magnetic Field and Vector Potential: Relation with Current, Galvanometer, and Maxwell's Equations
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Explores the relationship between magnetic field and vector potential, discussing galvanometers and Maxwell's equations.
Understanding Displacement Vector and Plane Waves
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Explores the displacement vector D, plane waves, and magnetic vector potential, addressing student questions and clarifying key concepts.
Covariant Maxwell Equations
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Covers the covariant form of Maxwell equations and properties of the field strength tensor.
Intensity: Light, Heat, and Energy Transport
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Explores heat generation from light-matter interactions, energy transport through electromagnetic waves, and the concept of intensity.
Maxwell Equations: Faraday Law of Induction
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Covers Faraday's law of induction, charge conservation, and electromagnetic waves.
Electromagnetism: Historical Overview and Maxwell's Equations
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Explores the historical evolution of electromagnetism, from ancient discoveries to Maxwell's equations.
Moving Charges to Magnetostatics: Cyclotron Motion and Magnetic Fields
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Explores time-dependent capacitors, cyclotron motion, and magnetic fields in electromagnetism.
Capacitance and Dielectrics: Understanding Maxwell's Equations
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Explores the significance of mastering Maxwell's equations in modern technologies through a Q&A session on dielectrics and electric fields.
Versatile EM Wave Description
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Summarizes EM chapters, emphasizing wave description, reflection laws, and light intensity calculations.
Maxwell's Equations: Evaluating Magnetic Fields from Magnetization
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Covers the use of Maxwell's equations to evaluate magnetic fields from magnetization in materials.
General Physics: Fluids and Electromagnetism
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Covers hydrodynamic and electromagnetic principles for second-semester mathematics students.
Multipole Expansion in Electrostatics and Magnetostatics
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Covers the concept of multipole expansion in electrostatics and magnetostatics, discussing Maxwell equations and magnetic moments.
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