| S# |
Lecture |
Course |
Institute |
Instructor |
Discipline |
| 3951 |
L25v3: Lenz's Law to Find the Direction of Induced Electric Field
|
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
|
| 3952 |
L30v5: Euler Formula for Complex Numbers
|
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
|
| 3953 |
L22v1: Ampere's Law for an Infinite Wire
|
Electricity and Magnetism: Magnetic Fields and Forces
|
MIT
|
Peter Dourmashkin, Krishna Rajagopal, Kerstin Perez, Analia Barrantes, Michelle Tomasik, Robert Redwin
|
Basic and Health Sciences
|
| 3954 |
High power argon laser (M-I-T)
|
Demonstrations in laser fundamentals (M-I-T)
|
MIT
|
Prof. Shaoul Ezekiel
|
Applied Sciences
|
| 3955 |
What is a discrete Fourier transform? (M-I-T)
|
Introduction to Computational Thinking (Fall 2020) (M-I-T)
|
MIT
|
Prof. Alan Edelman, Prof. David P. Sanders, Grant Sanderson, Dr. James Schloss, and Henri Drake
|
Applied Sciences
|
| 3956 |
L25v4: Induced Electric Field Outside a Solenoid with Changing 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
|
| 3957 |
L30v6: Modulus and Phase for a Complex Number
|
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
|
| 3958 |
L18v1: How to Make a Magnetic Field
|
Electricity and Magnetism: Magnetic Fields and Forces
|
MIT
|
Peter Dourmashkin, Krishna Rajagopal, Kerstin Perez, Analia Barrantes, Michelle Tomasik, Robert Redwin
|
Basic and Health Sciences
|
| 3959 |
L22v2: Ampere's Law for an Infinite Wire with Uniform Current Density
|
Electricity and Magnetism: Magnetic Fields and Forces
|
MIT
|
Peter Dourmashkin, Krishna Rajagopal, Kerstin Perez, Analia Barrantes, Michelle Tomasik, Robert Redwin
|
Basic and Health Sciences
|
| 3960 |
L25v5: Eddy Current Braking
|
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
|
| 3961 |
L31v10: Adding in Parallel and Admittance
|
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
|
| 3962 |
|
Demonstrations in laser fundamentals (M-I-T)
|
MIT
|
Prof. Shaoul Ezekiel
|
Applied Sciences
|
| 3963 |
L22v3: Ampere's Law for a Cylindrical Shell
|
Electricity and Magnetism: Magnetic Fields and Forces
|
MIT
|
Peter Dourmashkin, Krishna Rajagopal, Kerstin Perez, Analia Barrantes, Michelle Tomasik, Robert Redwin
|
Basic and Health Sciences
|
| 3964 |
|
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
|
| 3965 |
L31v11: Simplify a Circuit with Impedance and Admittance
|
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
|
| 3966 |
Laser transverse modes (M-I-T)
|
Demonstrations in laser fundamentals (M-I-T)
|
MIT
|
Prof. Shaoul Ezekiel
|
Applied Sciences
|
| 3967 |
L22v4: Magnetic Field of an Ideal Solenoid
|
Electricity and Magnetism: Magnetic Fields and Forces
|
MIT
|
Peter Dourmashkin, Krishna Rajagopal, Kerstin Perez, Analia Barrantes, Michelle Tomasik, Robert Redwin
|
Basic and Health Sciences
|
| 3968 |
|
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
|
| 3969 |
Coherence Length and Source Spectrum (M-I-T)
|
Demonstrations in physical optics (M-I-T)
|
MIT
|
Prof. Shaoul Ezekiel
|
Applied Sciences
|
| 3970 |
|
Demonstrations in laser fundamentals (M-I-T)
|
MIT
|
Prof. Shaoul Ezekiel
|
Applied Sciences
|
| 3971 |
L31v1: Introduction to AC 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
|
| 3972 |
L22v5: Magnetic Field of an Infinite Slab of Current
|
Electricity and Magnetism: Magnetic Fields and Forces
|
MIT
|
Peter Dourmashkin, Krishna Rajagopal, Kerstin Perez, Analia Barrantes, Michelle Tomasik, Robert Redwin
|
Basic and Health Sciences
|
| 3973 |
L27v1: Energy in and Inductor
|
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
|
| 3974 |
L37DD1: Energy Momentum and Wavelength of a Photon
|
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
|
| 3975 |
Curved Mirror Cavity — Radial Modes (M-I-T)
|
Demonstrations in physical optics (M-I-T)
|
MIT
|
Prof. Shaoul Ezekiel
|
Applied Sciences
|