SCCI Digital Library and Forum

MIT

S# Lecture Course Institute Instructor Discipline
4001
Fraunhofer Diffraction — Multiple Slits (M-I-T)
Demonstrations in physical optics (M-I-T) MIT Prof. Shaoul Ezekiel Applied Sciences
4002
Simple laser (M-I-T)
Demonstrations in laser fundamentals (M-I-T) MIT Prof. Shaoul Ezekiel Applied Sciences
4003
L28v4: Time Constants
Electricity and Magnetism: Maxwell’s Equations MIT Peter Dourmashkin, Krishna Rajagopal, Dr. Kerstin Perez, Dr. Analia Barrantes, Dr. Michelle Tomasik, Prof.Robert Redwine Basic and Health Sciences
4004
L38v3: Red Laser Interference
Electricity and Magnetism: Maxwell’s Equations MIT Peter Dourmashkin, Krishna Rajagopal, Dr. Kerstin Perez, Dr. Analia Barrantes, Dr. Michelle Tomasik, Prof.Robert Redwine Basic and Health Sciences
4005
L28v5: LR Circuit Demo
Electricity and Magnetism: Maxwell’s Equations MIT Peter Dourmashkin, Krishna Rajagopal, Dr. Kerstin Perez, Dr. Analia Barrantes, Dr. Michelle Tomasik, Prof.Robert Redwine Basic and Health Sciences
4006
Fraunhofer Diffraction — Rectangular Aperture (M-I-T)
Demonstrations in physical optics (M-I-T) MIT Prof. Shaoul Ezekiel Applied Sciences
4007
L32v7: Step-up and Step-Down Transformers
Electricity and Magnetism: Maxwell’s Equations MIT Peter Dourmashkin, Krishna Rajagopal, Dr. Kerstin Perez, Dr. Analia Barrantes, Dr. Michelle Tomasik, Prof.Robert Redwine Basic and Health Sciences
4008
Single frequency argon laser (M-I-T)
Demonstrations in laser fundamentals (M-I-T) MIT Prof. Shaoul Ezekiel Applied Sciences
4009
L38v4: Diffraction
Electricity and Magnetism: Maxwell’s Equations MIT Peter Dourmashkin, Krishna Rajagopal, Dr. Kerstin Perez, Dr. Analia Barrantes, Dr. Michelle Tomasik, Prof.Robert Redwine Basic and Health Sciences
4010
L33v1: Displacement Current
Electricity and Magnetism: Maxwell’s Equations MIT Peter Dourmashkin, Krishna Rajagopal, Dr. Kerstin Perez, Dr. Analia Barrantes, Dr. Michelle Tomasik, Prof.Robert Redwine Basic and Health Sciences
4011
Fraunhofer Diffraction — Thin Wires (M-I-T)
Demonstrations in physical optics (M-I-T) MIT Prof. Shaoul Ezekiel Applied Sciences
4012
L29DD1: Analogy of LC Circuits to Simple Harmonic Motion
Electricity and Magnetism: Maxwell’s Equations MIT Peter Dourmashkin, Krishna Rajagopal, Dr. Kerstin Perez, Dr. Analia Barrantes, Dr. Michelle Tomasik, Prof.Robert Redwine Basic and Health Sciences
4013
Spectrum of laser light (M-I-T)
Demonstrations in laser fundamentals (M-I-T) MIT Prof. Shaoul Ezekiel Applied Sciences
4014
L38v5: Red Laser Diffraction
Electricity and Magnetism: Maxwell’s Equations MIT Peter Dourmashkin, Krishna Rajagopal, Dr. Kerstin Perez, Dr. Analia Barrantes, Dr. Michelle Tomasik, Prof.Robert Redwine Basic and Health Sciences
4015
L33v2: Right Hand Rule for Ampere-Maxwell Equation
Electricity and Magnetism: Maxwell’s Equations MIT Peter Dourmashkin, Krishna Rajagopal, Dr. Kerstin Perez, Dr. Analia Barrantes, Dr. Michelle Tomasik, Prof.Robert Redwine Basic and Health Sciences
4016
L29v1: Review of Simple Harmonic Motion
Electricity and Magnetism: Maxwell’s Equations MIT Peter Dourmashkin, Krishna Rajagopal, Dr. Kerstin Perez, Dr. Analia Barrantes, Dr. Michelle Tomasik, Prof.Robert Redwine Basic and Health Sciences
4017
Tunable dye laser (M-I-T)
Demonstrations in laser fundamentals (M-I-T) MIT Prof. Shaoul Ezekiel Applied Sciences
4018
Fraunhofer Diffraction — Two Slits (M-I-T)
Demonstrations in physical optics (M-I-T) MIT Prof. Shaoul Ezekiel Applied Sciences
4019
L38v6: Diffraction and Interference
Electricity and Magnetism: Maxwell’s Equations MIT Peter Dourmashkin, Krishna Rajagopal, Dr. Kerstin Perez, Dr. Analia Barrantes, Dr. Michelle Tomasik, Prof.Robert Redwine Basic and Health Sciences
4020
L29v2: Introduction to LC Circuits
Electricity and Magnetism: Maxwell’s Equations MIT Peter Dourmashkin, Krishna Rajagopal, Dr. Kerstin Perez, Dr. Analia Barrantes, Dr. Michelle Tomasik, Prof.Robert Redwine Basic and Health Sciences
4021
L34v1: Maxwell's Equations in Vacuum
Electricity and Magnetism: Maxwell’s Equations MIT Peter Dourmashkin, Krishna Rajagopal, Dr. Kerstin Perez, Dr. Analia Barrantes, Dr. Michelle Tomasik, Prof.Robert Redwine Basic and Health Sciences
4022
Fresnel Diffraction — Adjustable Slit (M-I-T)
Demonstrations in physical optics (M-I-T) MIT Prof. Shaoul Ezekiel Applied Sciences
4023
L38v7: Red Laser Interference and Diffraction
Electricity and Magnetism: Maxwell’s Equations MIT Peter Dourmashkin, Krishna Rajagopal, Dr. Kerstin Perez, Dr. Analia Barrantes, Dr. Michelle Tomasik, Prof.Robert Redwine Basic and Health Sciences
4024
L29v3: LC Circuit and Mass on a Spring Analogy
Electricity and Magnetism: Maxwell’s Equations MIT Peter Dourmashkin, Krishna Rajagopal, Dr. Kerstin Perez, Dr. Analia Barrantes, Dr. Michelle Tomasik, Prof.Robert Redwine Basic and Health Sciences
4025
L34v2: Plane Wave Solution to Maxwell's Equations in Vacuum
Electricity and Magnetism: Maxwell’s Equations MIT Peter Dourmashkin, Krishna Rajagopal, Dr. Kerstin Perez, Dr. Analia Barrantes, Dr. Michelle Tomasik, Prof.Robert Redwine Basic and Health Sciences