Lecture Notes on
EEE534: Semiconductor Transport
These lecture notes have been prepared by Dragica Vasileska during the course of teaching the EEE534 Class at Arizona State University.
Handwritten Lecture Notes that have been prepared during the course of teaching this class:
Review of Statistical Mechanics
Quantum Theory of Electrons in Periodic Lattices
Time-Dependent Perturbation Theory; Side Notes on Variable Matrix Elements
Scattering Rates Calculation for Bulk Carriers:
1. Deformation Potential Scattering
2. Non-Polar Optical Phonon Scattering
3. Polar Optical Phonon Scattering
6. Carrier-Carrier Scattering: Binary Collisions and Plasma Excitations
Confined Carriers - Some Introductory Comments
- Scattering Rates Calculation – Acoustic Phonons
- Surface/Interface-Roughness
- Coulomb Scattering of Confined Carriers
Boltzmann Transport Equation (BTE)
2. Relaxation-Time Approximation
5. Orthogonal Polynomials, Conductivity Calculation
6. Transport in a Weak and Strong Magnetic Field
9. High-Field Transport – General Considerations: Velocity Saturation and Velocity Overshoot
1. Monte Carlo and Path Integral Formulation
2. Single Particle and Ensemble Monte Carlo Method
3. Many-body and Degeneracy Effects
4. Jacoboni Paper on Monte Carlo Method
Hydrodynamic Modeling: Derivation of the Hydrodynamic Equations
Powerpoint slides on the subject
· Introductory Concepts:
1. Class syllabus. Computational Electronics. Diffusive vs. ballistic transport
2. Semiconductor statistics and Density Of States (DOS) function
4. Time-dependent perturbation theory. Fermi’s Golden Rule
6. Assignments
v Semiconductor Statistics and DOS (100 pts)
v Electronic Band Structure (100 pts)
v Lattice Dynamics (100 pts)
· Scattering Theory
1. General derivation of scattering rate out of state k
2. Elastic scattering processes – Coulomb Scattering
3. Inelastic scattering processes – Phonon Scattering
4. Assignments
v Scattering Theory – Assignment 1
v Scattering Theory – Assignment 2
· Boltzmann Transport Equation – General Low-field Transport
1. Relaxation Time Approximation
3. Rode’s Iterative Method, Implementation details
4. Project 1
v Implementation of Rode’s Iterative Technique
· Boltzmann Transport Equation – Thermoelectric and Thermomagnetic Effects
· Boltzmann Transport Equation – High Field Transport
1. Device Scaling and Some General Ideas on High-Field Transport
2. Monte Carlo and Path Integral Formulation of the BTE
4. Single Particle and Ensemble Monte Carlo Method
5. Reading Material for Bulk MC for GaAs
6. Device Simulations, FD-Poisson, Device Simulator Description
7. Assignments
v Ensemble Bulk Monte Carlo Homework
v Ensemble Device Simulator for Modeling MESFETs
· Confined Carriers
1. General Comments on Confined Carriers (Mark Lundstrom’s Lecture)
2. Scattering Rates for Confined Carriers
a. Acoustic Phonon Scattering and
b. Interface Roughness Scattering
No comments:
Post a Comment