Course Information

Course Information
Course Title Code Semester L+U Hour Credits ECTS
- FIZ 528 3 + 0 3.0 8.0
Prerequisites None
Language of Instruction Turkish
Course Level Graduate
Course Type
Mode of delivery Lecturing
Course Coordinator Prof. Dr. Muharrem GÖKÇEN
Instructors
Assistants
Goals Renewable source of energy, giving basic information about the Sun. Physics of solar cells, explaining the working principle and production techniques in detail.
Course Content Renewable energy sources,Solar energy, the spectrum of sunlight,Structure of solar cells; Operation principle, characteristics and parameters,Structure of solar cells; Operation principle, characteristics and parameters,Developments principles of solar cell systems,Electronic of solar cell systems, DC/DC and AC/DC inverters,Solar battery supply circuits and lighting systems,Solar battery-powered battery charging systems,Semiconductor solar cells,Organic and inorganic solar cells,Single crystal growth techniques,Mechanism and dynamics of growth,Thin film growth techniques,Epitaxy growth techniques.
Learning Outcomes - Structure of solar cells, their operation principles, characteristics and parameters will be comprehended, and various techniques for fabrication of solar cells will be learned.
Weekly Topics (Content)
Week Topics Learning Methods
1. Week Renewable energy sources. Verbal Expression Visual Presentation
2. Week Solar energy, the spectrum of sunlight. Verbal Expression Visual Presentation
3. Week Structure of solar cells; Operation principle, characteristics and parameters. Verbal Expression Visual Presentation
4. Week Structure of solar cells; Operation principle, characteristics and parameters. Verbal Expression Visual Presentation
5. Week Developments principles of solar cell systems. Visual Presentation Verbal Expression
6. Week Electronic of solar cell systems, DC/DC and AC/DC inverters. Verbal Expression Visual Presentation
7. Week Solar battery supply circuits and lighting systems. Verbal Expression Visual Presentation
8. Week MIDTERM EXAM
9. Week Solar battery-powered battery charging systems. Verbal Expression Visual Presentation
10. Week Semiconductor solar cells. Visual Presentation Verbal Expression
11. Week Organic and inorganic solar cells. Visual Presentation Verbal Expression
12. Week Single crystal growth techniques. Visual Presentation Verbal Expression
13. Week Mechanism and dynamics of growth. Verbal Expression Visual Presentation
14. Week Thin film growth techniques. Verbal Expression Visual Presentation
Recommended Sources
• J. Nelson, The Physics of Solar Cells (Properties of Semiconductor Materials), Imperial College Press, 2003. • P. Würfel, Physics of Solar Cells: From Basic Principles to Advanced Concepts, 2 Upd Exp Edition, Wiley-VCH, 2009. • S.R. Wenham, M.A. Green, M.E. Watt, R. Corkish, Applied Photovoltaics, 2nd Edition, Earthscan Publications Ltd., 2007. • J. Poortmans, V. Arkhipov, Thin Film Solar Cells: Fabrication, Characterization and Applications, Wiley, 2006. • A. Luque, S. Heqedus, Handbook of Photovoltaic Science and Engineering, 2nd Edition, Wiley,2011
Relations with Education Attainment Program Course Competencies
Program Requirements Contribution Level DK1 Measurement Method
PY1 5 5 40,60
PY2 4 4 40,60
PY3 5 5 40,60
PY4 5 5 40,60
PY5 4 4 40,60
PY6 5 5 40,60
PY7 5 5 40,60
PY8 4 4 40,60
PY9 5 5 40,60
PY10 4 4 40,60
*DK = Course's Contrubution.
0 1 2 3 4 5
Course's Level of contribution None Very Low Low Fair High Very High
Method of assessment/evaluation Written exam Oral Exams Assignment/Project Laboratory work Presentation/Seminar
ECTS credits and course workload
Event Quantity Duration (Hour) Total Workload (Hour)
Course Hours 14 3 42
Preparation, After Class Study 14 3 42
Research 14 3 42
Verbal Expression 14 1 14
Visual Presentation 14 1 14
Midterm 1 1 2 2
Homework 1 1 4 4
Final 1 2 2
Classroom Activities 14 3 42
Total Workload 204
ECTS Credit of the Course 8.0