MIT 2.57 Nano-to-Micro Transport Processes, Spring 2012
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What you'll learn
This course includes
- 33.5 hours of video
- Certificate of completion
- Access on mobile and TV
Course content
1 modules • 25 lessons • 33.5 hours of video
MIT 2.57 Nano-to-Micro Transport Processes, Spring 2012
25 lessons
• 33.5 hours
MIT 2.57 Nano-to-Micro Transport Processes, Spring 2012
25 lessons
• 33.5 hours
- 1. Intro to Nanotechnology, Nanoscale Transport Phenomena 01:18:11
- 2. Characteristic Time and Length, Simple Kinetic Theory 01:20:35
- 3. Schrödinger Equation and Material Waves 01:20:35
- 4. Solutions to Schrödinger Equation, Energy Quantization 01:22:12
- 5. Electronic Levels in One-Dimensional Lattice Chain 01:20:06
- 6. Crystal Bonding & Electronic Energy Levels in Crystals 01:20:18
- 7. Phonon Energy Levels in Crystal and Crystal Structures 01:22:02
- 8. Density of States and Statistical Distributions 01:21:20
- 9. Specific Heat and Planck's Law 01:18:41
- 10. Fundamental of Statistical Thermodynamics 01:18:20
- 11. Energy Transfer by Waves: Plane Waves 01:21:34
- 12. EM Waves: Reflection at a Single Interface 01:21:28
- 13. EM Wave Propagation Through Thin Films & Multilayers 01:15:24
- 14. Wave Phenomena and Landauer Formalism 01:21:32
- 15. Particle Description, Liouville & Boltzmann Equations 01:19:20
- 16. Fermi Golden Rule and Relaxation Time Approximation 01:20:51
- 17. Solutions to Boltzmann Equation: Diffusion Laws 01:21:58
- 18. Electron Transport and Thermoelectric Effects 01:22:25
- 19. Classical Size Effects, Parallel Direction 01:20:33
- 20. Classical Size Effects, Perpendicular Direction 01:20:03
- 21. Slip Condition, Coupled Energy Transport & Conversion 01:21:02
- 22. PN Junction, Diode and Photovoltaic Cells 01:20:41
- 23. Liquids: Brownian Motion and Forces in Liquids 01:23:27
- 24. Electrical Double Layer, Size Effects in Phase Change 01:17:38
- 25. Statistical Foundation for Molecular Dynamics Simulation 01:24:06
