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Electronics Engineering Course
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Electronics Engineering Course

Master electronics engineering from foundational circuit theory to advanced embedded systems and power conversion. This course covers analog design, digital logic, RF fundamentals, and PCB layout with professional-grade depth. Build the technical skills employers demand and gain the confidence to design, simulate, and verify real-world electronic systems.

Dedika for students

What your team will master:

You will build a complete foundation in electrical theory, semiconductor devices, and AC circuit analysis before advancing to amplifier design and operational amplifier applications. The course covers digital logic, sequential circuits, and programmable logic devices, then moves into power electronics and switching converter design. You will configure microcontrollers, write real-time firmware, and implement serial communication protocols. PCB layout, signal integrity, EMC compliance, and RF fundamentals are also included. By the end, you will be equipped to take a circuit from specification through simulation to a fabrication-ready design.

How your team learns in practice Electronics Engineering Course

How your team practices Electronics Engineering Course

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Course Content

8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)

Chapter 1See details

Fundamentals of Electrical Theory

  • Lesson 1 • Series and Parallel DC Circuits

    Analyzes resistor configurations in series, parallel, and combined networks. Builds circuit-reduction skills essential for all subsequent circuit analysis.

  • Lesson 2 • Voltage, Current, and Resistance

    Defines the three fundamental electrical quantities and their units. Connects these quantities through Ohm's Law for circuit analysis.

  • Lesson 3 • Thevenin and Norton Equivalent Circuits

    Simplifies complex networks into two-terminal equivalents for load analysis. Enables efficient analysis of circuits with variable loads.

  • Lesson 4 • Kirchhoff's Laws and Network Analysis

    Applies KVL and KCL to multi-loop circuits with multiple sources. Introduces systematic mesh and nodal analysis methods.

  • Lesson 5 • Atomic Structure and Electric Charge

    Covers atomic models, electron behavior, and the origin of electric charge. Provides the physical foundation for understanding current flow and conductivity.

Chapter 2See details

Electronic Components and Characteristics

  • Lesson 1 • Resistors, Capacitors, and Inductors

    Examines passive component types, tolerances, and frequency-dependent behavior. Establishes the basis for filter and energy-storage circuit design.

  • Lesson 2 • Integrated Circuit Packages and Testing

    Surveys IC package types, pin identification, and basic functional testing. Prepares students for hands-on lab work with real components.

  • Lesson 3 • Bipolar Junction Transistors

    Explains BJT structure, operating regions, and DC biasing techniques. Provides the foundation for amplifier and switching circuit design.

  • Lesson 4 • Field-Effect Transistors

    Introduces JFET and MOSFET structures, transfer characteristics, and biasing. Highlights FET advantages in low-power and high-frequency applications.

  • Lesson 5 • Semiconductor Diodes

    Covers p-n junction physics, diode I-V characteristics, and common diode types. Connects semiconductor theory to rectification and protection applications.

Chapter 3See details

AC Circuit Analysis and Phasors

  • Lesson 1 • Transformers and Mutual Inductance

    Covers transformer operation, turns ratio, and equivalent circuit models. Connects AC theory to power distribution and impedance matching.

  • Lesson 2 • Sinusoidal Waveforms and Phasors

    Defines sinusoidal parameters and introduces phasor representation for AC analysis. Bridges time-domain signals to frequency-domain calculations.

  • Lesson 3 • Resonance in RLC Circuits

    Analyzes series and parallel resonance, bandwidth, and quality factor. Connects resonance theory to filter and tuned-circuit design.

  • Lesson 4 • Impedance and AC Circuit Laws

    Extends Ohm's Law and Kirchhoff's Laws to impedance-based AC circuits. Enables analysis of resistive, capacitive, and inductive networks at any frequency.

  • Lesson 5 • Frequency Response and Bode Plots

    Constructs magnitude and phase Bode plots for first- and second-order systems. Provides tools for evaluating filter performance and amplifier bandwidth.

Chapter 4See details

Analog Amplifier Design

  • Lesson 1 • Amplifier Frequency Response and Stability

    Evaluates high- and low-frequency roll-off using Miller effect and open-circuit time constants. Addresses stability criteria for feedback amplifiers.

  • Lesson 2 • Multi-Stage and Differential Amplifiers

    Cascades amplifier stages and analyzes differential pairs for common-mode rejection. Prepares students for op-amp internal architecture understanding.

  • Lesson 3 • Single-Stage BJT Amplifiers

    Analyzes voltage gain, input/output impedance, and frequency limits of CE, CB, and CC configurations. Builds core amplifier design competency.

  • Lesson 4 • Small-Signal Models and Parameters

    Derives small-signal hybrid-pi and T-models for BJTs and FETs. Establishes the analytical framework for all amplifier gain calculations.

  • Lesson 5 • FET Amplifier Configurations

    Applies small-signal analysis to CS, CG, and CD FET amplifier stages. Highlights FET advantages in high-input-impedance and low-noise designs.

Chapter 5See details

Operational Amplifiers and Applications

  • Lesson 1 • Active Filter Design

    Implements Butterworth and Chebyshev low-pass, high-pass, and band-pass active filters. Applies frequency response theory to practical signal conditioning.

  • Lesson 2 • Real Op-Amp Limitations and Parameters

    Quantifies offset voltage, bias current, slew rate, and bandwidth limitations. Teaches compensation strategies to meet real-world design specifications.

  • Lesson 3 • Ideal Op-Amp Model and Basic Configurations

    Introduces the ideal op-amp model and analyzes inverting, non-inverting, and differential amplifiers. Establishes the virtual-ground analysis technique.

  • Lesson 4 • Precision Rectifiers and Signal Conditioning

    Builds precision rectifiers, peak detectors, and sample-and-hold circuits using op-amps. Prepares students for sensor interface and data acquisition design.

  • Lesson 5 • Integrators, Differentiators, and Waveform Generators

    Designs op-amp integrators, differentiators, and oscillator circuits for signal processing. Connects linear op-amp math to practical waveform synthesis.

Chapter 6See details

Digital Electronics and Logic Design

  • Lesson 1 • Sequential Logic and Flip-Flops

    Analyzes SR, D, JK, and T flip-flops and designs synchronous state machines. Introduces timing analysis and setup/hold time constraints.

  • Lesson 2 • Number Systems and Boolean Algebra

    Converts between binary, octal, and hexadecimal systems and applies Boolean theorems. Provides the mathematical foundation for all digital logic design.

  • Lesson 3 • Registers, Counters, and Memory

    Designs shift registers, binary counters, and introduces RAM and ROM architectures. Connects sequential logic to data storage and transfer applications.

  • Lesson 4 • Combinational Logic Design

    Minimizes Boolean functions using Karnaugh maps and implements adders, multiplexers, and decoders. Builds systematic combinational circuit design skills.

  • Lesson 5 • Programmable Logic and HDL Introduction

    Introduces PLDs, CPLDs, and FPGAs and provides a basic introduction to hardware description language coding. Bridges discrete logic to modern programmable implementations.

Chapter 7See details

Power Electronics and Conversion

  • Lesson 1 • Rectifier and AC-DC Conversion

    Analyzes single- and three-phase rectifiers with capacitive and inductive filtering. Connects AC mains to regulated DC supply design.

  • Lesson 2 • Inverters and AC Motor Drives

    Analyzes single- and three-phase inverter topologies and PWM modulation strategies. Connects power conversion to variable-speed motor drive systems.

  • Lesson 3 • DC-DC Converter Topologies

    Designs buck, boost, and buck-boost converters using inductor volt-second balance. Provides core skills for switched-mode power supply design.

  • Lesson 4 • Feedback Control in Power Supplies

    Applies voltage-mode and current-mode control loops to regulate DC-DC converters. Introduces compensation design for stable closed-loop power supply operation.

  • Lesson 5 • Power Semiconductor Devices

    Examines power diodes, thyristors, IGBTs, and power MOSFETs for high-current switching. Establishes device selection criteria for power conversion applications.

Chapter 8See details

Embedded Systems and Microcontrollers

  • Lesson 1 • Microcontroller Architecture and Resources

    Surveys CPU core, memory map, clock system, and peripheral modules of a representative microcontroller. Provides the hardware context for all firmware development.

  • Lesson 2 • Serial Communication Protocols

    Implements UART, SPI, and I2C protocols for peripheral and inter-device communication. Develops protocol selection and debugging skills for embedded systems.

  • Lesson 3 • GPIO, Timers, and PWM Generation

    Configures digital I/O ports, hardware timers, and PWM output modules. Connects microcontroller peripherals to real-world actuator and timing applications.

  • Lesson 4 • Analog Interfaces and ADC Design

    Configures ADC modules, selects sampling rates, and designs signal conditioning front ends. Bridges analog sensor signals to digital processing.

  • Lesson 5 • Real-Time Firmware and RTOS Basics

    Structures firmware with tasks, scheduling, and inter-task communication using an RTOS. Prepares students for professional embedded software development practices.

Certification

Your valid completion certificate

This course is for you:

  • Electrical engineering students: seeking deeper practical circuit design skills.

  • Hobbyist makers: ready to move beyond kits into original hardware projects.

  • Software developers: transitioning into embedded systems and hardware roles.

  • Technicians: aiming to advance into engineering-level design responsibilities.

  • Career changers: entering electronics from physics, math, or related backgrounds.

  • Recent graduates: bridging the gap between academic theory and industry practice.

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