Course Information
SemesterCourse Unit CodeCourse Unit TitleT+P+LCreditNumber of ECTS CreditsLast Updated Date
4EEE202Electronic Circuits3+2+04626.03.2026

 
Course Details
Language of Instruction English
Level of Course Unit Bachelor's Degree
Department / Program Mechatronics Engineering (English)
Type of Program Formal Education
Type of Course Unit Compulsory
Course Delivery Method Face To Face
Objectives of the Course Teaching the students how to solve the circuits containing basic electronic circuit components
Course Content Diode Models (ideal model(with and without bias), piecewise-linear model(with and without bias), exponential model), Solutions of circuits containg diodes, Zener diode model and its circuit applications, Applications of common diode circuits (clapping and rectifier circuits), MOSFETs and circuits containing MOSFETs ( Solutions of Circuits via DC analysis and specifying the quiescent point, solutions of amplifier circuit topologies via AC analysis), BJTs and circuits containing BJTs ( Solutions of Circuits via DC analysis and specifying the quiescent point, solutions of amplifier circuit topologies via AC analysis), Logic circuit analysis and design using MOSFETs
Course Methods and Techniques Theoretical explanation of the topics, example questions and answers, Usage of electronic circuit simulation softwares: Mainly LTSpice examples
Prerequisites and co-requisities None
Course Coordinator None
Name of Lecturers Asist Prof.Dr. Murathan ALPAY
Assistants None
Work Placement(s) No

Recommended or Required Reading
Resources Adel S. Sedra, Kenneth L. Smith, Microelectronic Circuits
Donald A.Neamen, Microelectronics Circuit Analysis and Design
Course Notes Lecture notes, sample problems

Course Category
Mathematics and Basic Sciences %40
Engineering %40
Engineering Design %10
Science %10

Planned Learning Activities and Teaching Methods
Activities are given in detail in the section of "Assessment Methods and Criteria" and "Workload Calculation"

Assessment Methods and Criteria
In-Term Studies Quantity Percentage
Mid-terms 1 % 30
Assignment 1 % 10
Final examination 1 % 60
Total
3
% 100

 
ECTS Allocated Based on Student Workload
Activities Quantity Duration Total Work Load
Course Duration 14 3 42
Hours for off-the-c.r.stud 14 4 56
Assignments 1 14 14
Mid-terms 1 14 14
Final examination 1 28 28
Total Work Load   Number of ECTS Credits 6 154

 
Course Learning Outcomes: Upon the successful completion of this course, students will be able to:
NoLearning Outcomes
1 Performs DC analysis.
2 Performs AC analysis.
3 Recognizes and analyzes the fundamental amplifier circuit topologies.
4 Learns the diode models and the fundamental circuits containing diodes.
5 Learns the MOSFET types and models, analyzes the circuits containing MOSFETs.
6 Learns the BJT types and models, analyzes the circuits containing BJTs.

 
Weekly Detailed Course Contents
WeekTopicsStudy MaterialsMaterials
1 Diode Models-1 (İdeal Diode Model (with and without bias))
2 Diode Models-2 (Piecewise-linear Diode Model (with and without bias) and Exponential Diode Model)
3 Solutions to circuits containing diodes
4 Zener Diode Model and its circuit applications
5 Common diode circuits-1(Clamping circuits)
6 Common diode circuits-2(Rectifier circuits)
7 MOSFETs and circuits containing MOSFETs-1 ( Solutions of Circuits via DC analysis and specifying the quiescent point, solutions of amplifier circuit topologies via AC analysis)
8 Logic circuit analysis and design using MOSFETs
9 Computations of voltage gain and input/output resistance values in amplifier topologies
10 MOSFETs and circuits containing MOSFETs-2 ( Solutions of Circuits via DC analysis and specifying the quiescent point, solutions of amplifier circuit topologies via AC analysis)
11 MOSFETs and circuits containing MOSFETs-3 ( Solutions of Circuits via DC analysis and specifying the quiescent point, solutions of amplifier circuit topologies via AC analysis)
12 BJTs and circuits containing BJTs-1 ( Solutions of Circuits via DC analysis and specifying the quiescent point, solutions of amplifier circuit topologies via AC analysis)
13 BJTs and circuits containing BJTs-2 ( Solutions of Circuits via DC analysis and specifying the quiescent point, solutions of amplifier circuit topologies via AC analysis)
14 BJTs and circuits containing BJTs-3 ( Solutions of Circuits via DC analysis and specifying the quiescent point, solutions of amplifier circuit topologies via AC analysis)

 
Contribution of Learning Outcomes to Programme Outcomes
P1 P2 P3 P4 P5 P6 P7 P8 P9 P10 P11 P12
All 5
C1 5
C2 5
C3 5
C4 5
C5 5
C6 5

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