Course
BME3113194
FUNDAMENTALS of PHOTONICS and ELECTRO-OPTICS
Biomedical Engineering
- LECTURE
- 3
- LAB
- 0
- CREDITS
- 3
- ECTS
- 6
REQUIRES
REQUIRED BY
TAUGHT IN
AIM
It is aimed that the students can model and analyze optical systems using the basic optics theories namely ray optics and wave optics. Besides students will be familiar with the subjects of interference, coherence, diffraction, and holography.
CONTENT
This course contains; Nature of Light and Geometrical Optics,Optical Instrumentation,Properties of Laser and Wave Equations,Superposition of Waves,Interference of Light and Optical Interferometry,Coherence,Fiber Optics,Fraunhofer Diffraction and Diffraction Grating,Fresnel Diffraction,Matrix Treatment of Polarization, Production of Polarized Light,Holography,Optical Detectors and Displays,Matrix Methods in Paraxial Optics,Aberration Theory.
LEARNING OUTCOMES
- 1
Design and analyze optical instruments.
Taught by: Problem Solving Method, Lecture Method · Assessed by: Traditional Written Exam, Homework, Project Task
- 2
Explain the working principle of electro optical devices (sources, modulators and detectors).
Taught by: Problem Solving Method, Lecture Method · Assessed by: Traditional Written Exam, Homework, Project Task
- 3
Apply the principles of interference and diffraction to understand coherent optical systems.
Taught by: Problem Solving Method, Lecture Method · Assessed by: Traditional Written Exam, Homework, Project Task
- 4
Build prototypes of optical instruments.
Taught by: Problem Solving Method, Lecture Method · Assessed by: Traditional Written Exam, Homework, Project Task
- 5
Develop interfaces with laser diodes, light emitting diodes, and photodiodes.
Taught by: Problem Solving Method, Lecture Method · Assessed by: Traditional Written Exam, Homework, Project Task
WEEKLY PLAN
- WEEK 1
Nature of Light and Geometrical Optics
Preparation: Read the lecture notes
- WEEK 2
Optical Instrumentation
Preparation: Read the lecture notes
- WEEK 3
Properties of Laser and Wave Equations
Preparation: Read the lecture notes
- WEEK 4
Superposition of Waves
Preparation: Read the lecture notes
- WEEK 5
Interference of Light and Optical Interferometry
Preparation: Read the lecture notes
- WEEK 6
Coherence
Preparation: Read the lecture notes
- WEEK 7
Fiber Optics
Preparation: Read the lecture notes
- WEEK 8
Fraunhofer Diffraction and Diffraction Grating
Preparation: Read the lecture notes
- WEEK 9
Fresnel Diffraction
Preparation: Read the lecture notes
- WEEK 10
Matrix Treatment of Polarization, Production of Polarized Light
Preparation: Read the lecture notes
- WEEK 11
Holography
Preparation: Read the lecture notes
- WEEK 12
Optical Detectors and Displays
Preparation: Read the lecture notes
- WEEK 13
Matrix Methods in Paraxial Optics
Preparation: Read the lecture notes
- WEEK 14
Aberration Theory
Preparation: Read the lecture notes
ASSESSMENT
- Rate of Midterm Exam to Success30%
- Rate of Final Exam to Success70%
WORKLOAD
| ACTIVITY | COUNT | HOURS | TOTAL |
|---|---|---|---|
| Course Hours | 14 | 3 | 42 |
| Guided Problem Solving | 0 | 0 | 0 |
| Resolution of Homework Problems and Submission as a Report | 14 | 6 | 84 |
| Term Project | 0 | 0 | 0 |
| Presentation of Project / Seminar | 0 | 0 | 0 |
| Quiz | 6 | 1 | 6 |
| Midterm Exam | 1 | 20 | 20 |
| General Exam | 1 | 30 | 30 |
| Performance Task, Maintenance Plan | 0 | 0 | 0 |
READING
- Frank Pedrotti, Leno M. Pedrotti, and Leno S. Pedrotti, Introduction to Optics, Prentice Hall, 3rd Edition, 2007
- Eugene Hecht,Optics, 4th Ed. Addison-Wesley, 2002
TEACHING STAFF
- Assoc.Prof. Muhammed Fatih TOYCOORDINATOR
- Assoc.Prof. Muhammed Fatih TOY