6.5 Retarded Solutions for the Fields: Jefimenko's Generalizations of the Coulomb and Biot-Savart Laws
6.6 Derivation of the Equations of Macroscopic Electromagnetism
6.7 Poynting's Thể 3rem and Conservation of Energy and Momentum for a System of Charged Particles and Electromagnetic Fields
6.8 Poynting's Theorem in Linear Dissipative Media with Losses
6.9 Poynting's Theorem for Harmonic Fields
6.10 Transformation Properties of Electromagnetic Fields and Sources Under Rotations, Spatial Reflections, and Time Reversal
6.11 On the Question of Magnetic Monopoles
6.12 Discussion of the Dirac Quantization Condition
6.13 Polarization Potentials (Hertz Vectors)
References and Suggested Reading
Problems
Chapter 7 Plane Electromagnetic Waves and Wave Propagation
7.1 Plane Waves in a Nonconducting Medium
7.2 Linear and Circular Polarization
7.3 Reflection and Refraction of Electromagnetic Waves at a Plane Interface Between Two Dielectrics
7.4 Polarization by Reflection, Total Internal Reflection
7.5 Frequency Dispersion Characteristics of Dielectrics, Conductors, and Plasmas
7.6 Simplified Model of Propagation in the lonosphere and Magnetosphere
7.7 Magnetohydrodynamic Waves
7.8 Superposition of Waves in One Dimension
7.9 Illustration of the Spreading of a Pulse As It Propagates in a Dispersive Medium
7.10 Causality in the Connection Between D and E
7.11 Arrival of a Signal After Propagation Through a Dispersive Medium
References and Suggested Reading
Problems
Chapter 8 Waveguides, Resonant Cavities, and Optical Fibers
8.1 Fields at the Surface of and Within a Conductor
8.2 Cylindrical Cavities and Waveguides
8.3 Waveguides
8.4 Modes in a Rectangular Waveguide
8.5 Energy Flow and Attenuation in Waveguides
8.6 Perturbation of Boundary Conditions
8.7 Resonant Cavities
8.8 Power Losses in a Cavity
8.9 Earth and Ionosphere as a Resonant Cavity: Schumann Resonances
8.10 Multimode, Propagation in Optical Fibers
8.11 Modes in Dielectric Waveguides
8.12 Expansion in Normal Modes
References and Suggested Reading
Problems
Chapter 9 Radiating Systems, Multipole Fields and Radiation
9.1 Fields and Radiation of a Localized Oscillating Source
9.2 Electric Dipole Fields and Radiation
9.3 Magnetic Dipole and Electric Quadrupole Fields
9.4 Center-Fed Linear Antenna
9.5 Multipole Expansion for Localized Source or Aperture in Waveguide
9.6 Spherical Wave Solutions of the Scalar Wave Equation
9.7 Multipole Expansion of the Electromagnetic Fields
9.8 Properties of Multipole Fields, Energy and Angular Momentum of Multipole Radiation
9.9 Angular Distribution of Multipole Radiation
9.10 Sources of Multipole Radiation
9.11 Multipole Radiation in Atoms and Nuclei
9.12 Multipole Radiation from a Linear, Center-Fed Antenna
References and Suggested Reading
Problems
Chapter 10 Scattering and Diffraction
10.1 Scattering at Long Wavelengths, Perturbation Theory of Scattering, Rayleigh's Explanation of the Blue Sky, Scattering by Gases and Liquids, Attenuation in Optical Fibers
10.3 Spherical Wave Expansion of a Vector Plane Wave
10.4 Scattering of Electromagnetic Waves by a Sphere
10.5 Scalar Diffraction Theory
10.6 Vector Equivalents of the Kirchhoff Integral
10.7 Vectorial Diffraction Theory
10.8 Babinet's Principle of Complementary Screens
10.9 Diffraction by a Circular Aperture
10.10 Scattering in the Short-Wavelength Limit
10.11 Optical Theorem and Related Matters
References and Suggested Reading
Problems
Chapter 11 Special Theory of Relativity
11.1 The Situation Before 0, Einstein's Two Postulates
11.2 Some Recent Experiments
11.3 Lorentz Transformations and Basic Kinematic Results of Special Relativity
11.4 Addition of Velocities
11.5 Relativistic Momentum and Energy of a Particle
11.6 Mathematical Properties of the Space-Time of Special Relativity
11.7 Matrix epresentation of Lorentz Transformations, Infinitesimal Generators
11.8 Thomas Precession
11.9 Invariance of Electric Charge
11.10 Transformation of Electromagnetic Fields
11.11 Relativistic Equation of Motion for Spin in Uniform or Slowly Varying External Fields
11.12 Note on Notation and Units in Relativistic Kinematics
References and Suggested Reading
Problems
Chapter 12 Dynamics of Relativistic Particles and Electromagnetic Fields
12.1 Lagrangian and Hamiltonian for a Relativistic Charged Particle in External Electromagnetic Fields
12.2 Motion in a Uniform, Static Magnetic Field
12.3 Motion in Combined, Uniform, Static Electric and Magnetic Fields
12.4 Particle Drifts in Nonuniform, Static Magnetic Fields
12.5 Adiabatic Invariance of Flux Through Orbit of Particle
12.6 Lowest Order Relativistic Corrections to the Lagrangian for Interacting Charged Particles:The Darwin Lagrangian
12.7 Lagrangian for the Electromagnetic Field
12.8 Proca Lagrangian
12.9 Effective Photon” Mass in Superconductivity
12.10 Canonical and Symmetric Stress Tensors
12.11 Solution of the Wave Equation in Covariant Form
References and Suggested Reading
Problems
Chapter 13 Collisions, Energy Loss, and Scattering of Charged Particles, Cherenkov and Transition Radiation
13.1 Energy Transfer in Coulomb Collision Between Heavy Incident Particle and Free Electron
13.2 Energy Loss from Soft Collisions
13.3 Density Effect in Collisional Energy Los
13.4 Cherenkov Radiation
13.5 Elastic Scattering of Fast Charged Particles by Atoms
13.6 Mean Square Angle of Scattering
13.7 Scattering Transition Radiation
References and Suggested Reading
Problems
Chapter 14 Radiation by Moving Charges
14.1 Liénard-Wiechert Potentials and Fields for a Point Charge
14.2 Total Power Radiated by an Accelerated Charge: Larmor's Formula and Its Relativistic Generalization
14.3 Angular Distribution of Radiation Emitted by an Accelerated Charge
14.4 Radiation Emitted by a Charge in Arbitrary, Extremely Relativistic Motion
14.5 Distribution in Frequency and Angle of Energy Radiated by Accelerated Charges: Basic Results
14.6 Frequency Spectrum of Radiation Emitted by a Relativistic Charged Particle in Instantaneously Circular Motion
14.7 Undulators and Wigglers for Synchrotron Light Sources
14.8 Thomson Scattering of Radiation
References and Suggested Reading
Problems
Chapter 15 Bremsstrahlung, Method of Virtual Quanta, Radiative Beta Processes
15.1 Radiation Emitted During Collisions
15.2 Bremsstrahlung in Coulomb Collisions
15.3 Screening Effects
15.4 Weizsäcker-Williams Method of Virtual Quanta
15.5 Bremsstrahlung as the Scattering of Virtual Quanta
15.6 Radiation Emitted During Beta Decay
15.7 Radiation Emitted During Orbital Electron Capture: Disappearance of Charge and Magnetic Moment
References and Suggested Reading
Problems
Chapter 16 Radiation Damping, Classical Models of Charged Particles
16.1 Introductory Considerations
16.2 Radiative Reaction Force from Conservation of Energy
16.3 Abraham-Lorentz Evaluation of the Self-Force
16.4 Relativistic Covariance
16.5 Covariant Definitions of Electromagnetic Energy and Momentum
16.6 Covariant Stable Charged Particle
16.7 Level Breadth and Level Shift of a Radiating Oscillator
16.8 Scattering and Absorption of Radiation by an Oscillator
References and Suggested Reading
Problems
Appendix on Units and Dimensions
1 Units and Dimensions, Basic Units and Derived Units
2 Electromagnetic Units and Equations
3 Various Systems of Electromagnetic Units
4 Conversion of Equations and Amounts Between SI Units and Gaussian Units