程式語言於半導體技術應用
Introduction to Programming for Semiconductor Devices
| 節 | 週二 |
|---|---|
2 09:00–09:50 | 程式語言於半導體技術應用 EE116 3 節連堂 |
3 10:10–11:00 | |
4 11:10–12:00 |
* 根據陽明交大上課時間表所列
The goal is to learn how to make programs considering an examples of different mathematical and physical problems, including classical and quantum mechanics, semiconductor device physics, spintronic devices. First part of the course will be related with programming skills, e.g. plotting, Graphic User Interface, built-in-functions, algorithms, coding.. Second part of the course will be related with developing codes which simulate the I-V curves of the well-known devices.
Each participation in the classwork gives 5 points, Test of the middle term exam gives 25 points as max. Final Exam gives max 25 points. (70 - no pass, 75-85 -> B, 85-95 -> A, 95 - 100 -> A+ ) 1. Exams and Quizzes: 40 % 2. Participation 60%.
| 週次 | 主題 |
|---|---|
| 第 1 週 | Visualization of the simple analytical functions (e.g. Fermi-Dirac distribution). Input/output data and its visualization. Cycles, interactive input. Frequently meet functions in physics. Build-in-functions in MATLAB & Wolfram MATEMATICA. Requirements that needed in figures for publication. |
| 第 2 週 | 1. Visualization of dynamic plots in MatLab 2. Graphical solution of the equations 3. Optimization problem and min of the complicated functions 4. Periodic Step function 5. Subplots and convolution of the data set |
| 第 3 週 | Practice. Visualization of the complicated analytical functions, examples of the complicated relations. Examples of the simulations in physics: e.g. oscillations of the pendulums, trajectories of the charges, etc. Dynamic visualization: parameter tuning of the model. |
| 第 4 週 | 1. Visualization of simple problems in circuits 2. Application of Kirchhoff's circuit law 3. Maximum Power transfer 4. Ordinary Differential Equations (ODE). ODE in power electronics. Examples. |
| 第 5 週 | Practice Examples of the integration and solution of the systems of differential equations. Geometrical interpretation and visualization. Solution of the algebraic system of the equations with a help of programming. Block-schemes of the models and algorithms. Logic. Practice: integration/ differential eq within low and high level programming models. |
| 第 6 週 | Visualization with conditions: enhancement MOSFET characteristics 2. Integration with MATLAB. Integration in Circuits. Graphical user interface (GUI). |
| 第 7 週 | 1. Analytical solutions 2. System of linear equations 3. Example of linear equations from quantum physics. Practice: Building and solution of the linear equations. Code improvement and optimization. |
| 第 8 週 | Middle term Exam – Test (14 tasks) |
| 第 9 週 | Part I Application of the Schrödinger eq. for semiconductors, metal/metal and metal/semiconductor junctions. Electron transport theory and its simulation. Magnetic point contact and spin current models. |
| 第 10 週 | Part II. Practice. Application of the Schrödinger eq. for semiconductors, metal/metal and metal/semiconductor junctions. |
| 第 11 週 | Potential profile of the Barrier. Programming of the Transfer matrix technique. |
| 第 12 週 | Basics for ferroelectric materials. Ferroelectric hysteresis. Modelling of the ferroelectric tunnel junction (application for FeRAM). Programming practice of the potential energy plot. Thomas-Fermi screening. (Part I) |
| 第 13 週 | Basics for ferroelectric materials. Ferroelectric hysteresis. Modelling of the ferroelectric tunnel junction. Programming practice of the potential energy plot. Thomas-Fermi screening. (Part II) |
| 第 14 週 | Spintronic devices. Magnetic domain wall. Magnetoresistance (MR), giant and tunnel MR. Magnetic tunnel junction. |
| 第 15 週 | Practice: Magnetic point contact and spin current models. Magnetic tunnel junction (application for MRAM). Repetitions of the previous material. |
| 第 16 週 | Exam. |
1.) S.M. Sze "Physics of Semiconductor Devices" published by John Wiley & Sons, Inc. in 2007 2.) John O. Attia "Electronics and Circuit analysis using MATLAB" by CRC Press LLC, 1999, ISBN 0-8493-1176-4 3) Victor E. Borisenko and Stefano Ossicini. What is What in the Nanoworld, A Handbook on Nanoscience and Nanotechnology (Wiley-VCH Verlag & Co. KGaA, 2012) ePDF ISBN: 978-3-527-64839-9 4) E. Tsymbal et.al. Handbook-of-Spin-Transport-and- Magnetism (by Taylor & Francis Group. LLC, 2012) 5) Natalia Domracheva and Maria Caporali and Eva Rentschler "Novel Magnetic Nanostructures" Elsevier 2018. Artur Useinov and Chih-Huang Lai and Niazbek Kh. Useinov and Lenar R. Tagirov "Chapter 11 - Spin and Charge Tunneling Transport in Magnetic Tunnel Junctions With Embedded Nanoparticles" https://doi.org/10.1016/B978-0-12-813594-5.00011-4
- 地點
- EE 473
- 時間
- Mo-Tu:13:30 -16:00
- 聯絡方式
- artu@nycu.edu.tw