Physics 208

  • Autor: Vários
  • Narrador: Vários
  • Editor: Podcast
  • Duración: 23:45:27
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Sinopsis

Class material from Physics 208 "Electrooptics" at San Jose State for Spring 2009. This podcast will mostly contain recorded lectures in m4a format.

Episodios

  • Photonic Circuits

    07/05/2009 Duración: 01h05min

    We look at how the various pieces of optics we have studied throughout the course are integrated in to devices.

  • Ultrafast optics

    05/05/2009 Duración: 01h17min

    We look at generation, propagation and detection of ultrafast laser pulses

  • 4 wave mixing

    30/04/2009 Duración: 01h18min

    We look at the third order nonlinear effect and uses for Kerr lenses.

  • Nonlinear Wave Equation

    23/04/2009 Duración: 01h13min

    We use coupled mode analysis to investigate the field amplitudes in three wave mixing, and look at the effect of phase mismatch on the conversion efficiency of nonlinear processes.

  • Phase Matching of SHG

    21/04/2009 Duración: 01h09min

    We look at the phase matching condition for Second Harmonic Generation and also do a tuning curve example for an OPO

  • Nonlinear optics 1

    16/04/2009 Duración: 01h13min

    We introduce non-linear optics and discuss various forms of 3 wave mixing including frequency converters, optical parametric amplifiers (OPAs), optical parametric oscillators (OPOs) and second harmonic generation (SHG)

  • 2D Waveguides

    14/04/2009 Duración: 01h14min

    We generalize the expressions for 1D waveguide to 2 dimensions and focus on the calculation of power coupled into a waveguide from a Gaussian beam.

  • 1D waveguides

    07/04/2009 Duración: 01h12min

    We look at both the ray picture and field picture of modes in a 1D waveguide.

  • Photonic Crystals

    02/04/2009 Duración: 01h12min

    We look at the unusual properties of 2d and 3d photonic crystals

  • Propagation in periodic media

    31/03/2009 Duración: 01h05min

    We look at Bloch Wave solutions to propagation in a periodic material using Fourier analysis of the material permittivity.

  • Electrooptics

    03/03/2009 Duración: 01h03min

    We introduce the electrooptic tensor and do examples using the linear electrooptic effect.

  • Acoustooptic devices

    26/02/2009 Duración: 53min

    We look at figures of merit for acoustooptic materials and limitation on modulation bandwidth in acoustooptic modulators.

  • Acoustooptics

    24/02/2009 Duración: 01h08min

    We look at the Bragg condition in anisotropic materials and solve for the diffracted beam amplitude using coupled mode theory.

  • Jones Calculus and Liquid Crystals

    17/02/2009 Duración: 01h15min

    We introduce Jones calculus to keep track of polarization direction and use it to describe a number of examples including polarization rotation in a twisted nematic liquid crystal.

  • Faraday Rotators in LIGO

    12/02/2009 Duración: 59min

    We look at how aspects of this class relate to the Laser Interferometer Gravitational Wave Observatory (LIGO) and investigate the design of the LIGO Faraday Isolators

  • Optical Activity

    10/02/2009 Duración: 01h17min

    We provide a physical description for the origin of optical activity and faraday rotation in a material and useeigenmodes as well as coupled mode analysis to solve for the behavior of fields propagating through an optically active material.

  • Index Ellipsoid

    05/02/2009 Duración: 01h18min

    We introduce the index ellipsoid and show how it can be used to find the indices of refraction for light propagating in a crystal in an arbitrary direction.

  • Propagation in Anisotropic Materials

    03/02/2009 Duración: 01h16min

    We look at solutions to the wave equation in anisotropic materials and the "normal shells" that describe of those solutions.

  • Maxwell's Equations in Matter

    29/01/2009 Duración: 01h16min

    We consider Maxwell's equations in matter and use them to find the boundary conditions at an interface, and the wave equation in anisotropic materials.

  • Waves in Isotropic Materials

    27/01/2009 Duración: 01h11min

    We derive the wave equation in isotropic materials from Maxwell's laws and we introduce phasor notation as a method for simplifying calculations.