SCCI Digital Library and Forum

Electrical, Optical, and Magnetic Materials and Devices (Spring 2020) (M-I-T)

S# Lecture Course Institute Instructor Discipline
1
An Introduction to Carrier Action (M-I-T)
Electrical, Optical, and Magnetic Materials and Devices (Spring 2020) (M-I-T) MIT Prof. Caroline Ross Applied Sciences
2
An Introduction to the pn Junction (M-I-T)
Electrical, Optical, and Magnetic Materials and Devices (Spring 2020) (M-I-T) MIT Prof. Caroline Ross Applied Sciences
3
Band Diagram of a pn Junction (M-I-T)
Electrical, Optical, and Magnetic Materials and Devices (Spring 2020) (M-I-T) MIT Prof. Caroline Ross Applied Sciences
4
The BJT: Currents in Forward Active Mode (M-I-T)
Electrical, Optical, and Magnetic Materials and Devices (Spring 2020) (M-I-T) MIT Prof. Caroline Ross Applied Sciences
5
Band Diagrams (M-I-T)
Electrical, Optical, and Magnetic Materials and Devices (Spring 2020) (M-I-T) MIT Prof. Caroline Ross Applied Sciences
6
The BJT: Forward Active Mode (M-I-T)
Electrical, Optical, and Magnetic Materials and Devices (Spring 2020) (M-I-T) MIT Prof. Caroline Ross Applied Sciences
7
Carrier Concentrations in a Biased Junction (M-I-T)
Electrical, Optical, and Magnetic Materials and Devices (Spring 2020) (M-I-T) MIT Prof. Caroline Ross Applied Sciences
8
The BJT: Other Operation Modes & Summary (M-I-T)
Electrical, Optical, and Magnetic Materials and Devices (Spring 2020) (M-I-T) MIT Prof. Caroline Ross Applied Sciences
9
Carrier Diffusion (M-I-T)
Electrical, Optical, and Magnetic Materials and Devices (Spring 2020) (M-I-T) MIT Prof. Caroline Ross Applied Sciences
10
The Depletion Approximation & Summary (M-I-T)
Electrical, Optical, and Magnetic Materials and Devices (Spring 2020) (M-I-T) MIT Prof. Caroline Ross Applied Sciences
11
Carrier Distribution (M-I-T)
Electrical, Optical, and Magnetic Materials and Devices (Spring 2020) (M-I-T) MIT Prof. Caroline Ross Applied Sciences
12
The Ideal Diode Equation: Diffusion Flux (M-I-T)
Electrical, Optical, and Magnetic Materials and Devices (Spring 2020) (M-I-T) MIT Prof. Caroline Ross Applied Sciences
13
Carrier Properties (M-I-T)
Electrical, Optical, and Magnetic Materials and Devices (Spring 2020) (M-I-T) MIT Prof. Caroline Ross Applied Sciences
14
The Junction Field Effect Transistor (M-I-T)
Electrical, Optical, and Magnetic Materials and Devices (Spring 2020) (M-I-T) MIT Prof. Caroline Ross Applied Sciences
15
Crystal Colors and Summary (M-I-T)
Electrical, Optical, and Magnetic Materials and Devices (Spring 2020) (M-I-T) MIT Prof. Caroline Ross Applied Sciences
16
The MOS Field Effect Transistor (M-I-T)
Electrical, Optical, and Magnetic Materials and Devices (Spring 2020) (M-I-T) MIT Prof. Caroline Ross Applied Sciences
17
Drift (M-I-T)
Electrical, Optical, and Magnetic Materials and Devices (Spring 2020) (M-I-T) MIT Prof. Caroline Ross Applied Sciences
18
Drift Flux & The Ideal Diode Equation (M-I-T)
Electrical, Optical, and Magnetic Materials and Devices (Spring 2020) (M-I-T) MIT Prof. Caroline Ross Applied Sciences
19
The pn Junction Under Bias: Summary (M-I-T)
Electrical, Optical, and Magnetic Materials and Devices (Spring 2020) (M-I-T) MIT Prof. Caroline Ross Applied Sciences
20
The pn Junction: Forward Bias (M-I-T)
Electrical, Optical, and Magnetic Materials and Devices (Spring 2020) (M-I-T) MIT Prof. Caroline Ross Applied Sciences
21
Examples of Diodes (M-I-T)
Electrical, Optical, and Magnetic Materials and Devices (Spring 2020) (M-I-T) MIT Prof. Caroline Ross Applied Sciences
22
More Examples of Diodes & Summary (M-I-T)
Electrical, Optical, and Magnetic Materials and Devices (Spring 2020) (M-I-T) MIT Prof. Caroline Ross Applied Sciences
23
The pn Junction: Reverse Bias (M-I-T)
Electrical, Optical, and Magnetic Materials and Devices (Spring 2020) (M-I-T) MIT Prof. Caroline Ross Applied Sciences
24
The pn Junction: Unbiased Case (M-I-T)
Electrical, Optical, and Magnetic Materials and Devices (Spring 2020) (M-I-T) MIT Prof. Caroline Ross Applied Sciences
25
MOS Devices: Band Structure Under Applied Voltage (M-I-T)
Electrical, Optical, and Magnetic Materials and Devices (Spring 2020) (M-I-T) MIT Prof. Caroline Ross Applied Sciences