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Course Outline

Introduction

  • Overview of semiconductors

Material Properties and Doping

  • Transition from energy levels to energy bands
  • Crystalline, polycrystalline, and amorphous semiconductors
  • Miller indices
  • Characteristics of common semiconductor materials
  • Free carriers in semiconductors

Fundamentals of Quantum Mechanics

  • Understanding the wave equation
  • Quantum confinement
  • Quantum tunneling and reflection
  • Electron waves in crystal structures
  • Density of states

Equilibrium Carrier Concentration

  • Understanding the Fermi function
  • Fermi-Dirac integrals
  • Relationship between Fermi level and carrier concentration
  • Relationship between doping density and carrier concentration
  • Relationship between temperature and carrier concentration

Carrier Transport, Generation, and Recombination

  • Understanding the Landauer approach
  • Current flow from nanoscale to macroscale
  • Drift-diffusion equation
  • Carrier recombination and generation processes

Semiconductor Equations

  • Understanding mathematical formulation
  • Energy band diagrams
  • Quasi-Fermi levels
  • Minority carrier diffusion equation

Summary and Next Steps

Requirements

  • Background knowledge in Physics, Chemistry, and Mathematics
  • Familiarity with semiconductor concepts
  • Proficiency in basic differential equations

Target Audience

  • Electrical engineers
  • Individuals interested in the field of semiconductors
 35 Hours

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