Choose your language
Basic Electronics Course
+400,000 professionals on the platform
Exclusive for businesses

Basic Electronics Course

Build a solid foundation in electronics by mastering the core principles that power every circuit you will ever work with. This course takes you from basic voltage and current concepts all the way through semiconductors, transistors, and op-amps. Whether you are starting fresh or filling in gaps, you will gain the technical knowledge to analyse and design real circuits with confidence.

Dedika for students

What your team will master:

You will start with the fundamentals of charge, voltage, current, and resistance, then move into systematic DC circuit analysis using Kirchhoff's laws, node voltage, and mesh current methods. From there, you will study capacitors, inductors, and transient responses before tackling AC circuits, phasors, and frequency response. The course covers resonance, passive filter design, and Bode plots, then transitions into semiconductor devices including diodes, BJTs, and op-amps. Supplementary material introduces SPICE simulation, PCB layout basics, power supply design, and professional troubleshooting methods. By the end, you will have a complete, practical understanding of analog electronics from first principles to real-world application.

How your team learns practically Basic Electronics Course

How your team practises Basic Electronics Course

Professionals from these companies study at Dedika

ActemiumFR
Nunner LogisticsNL
GT Constructora GeotécnicaCR
Sydel StarBR
Metrô de São PauloBR
Aguas AndinasCL
DSMIN
MeridianbetRS
CDHCN

Course content

8 Chapters • 44 LessonsDuration between 4 and 360 hours (you decide)

Chapter 1See details

Electricity and Circuit Fundamentals

  • Lesson 1 • Ohm's Law and Its Applications

    Introduces the linear relationship V = IR and applies it to simple calculations. Students solve for any one quantity given the other two.

  • Lesson 2 • Electrical Power and Energy

    Defines power as the rate of energy transfer and introduces P = VI. Connects power calculations to real-world component ratings.

  • Lesson 3 • Voltage, Current, and Resistance

    Defines the three fundamental electrical quantities and their units. Provides the conceptual foundation for all circuit analysis that follows.

  • Lesson 4 • Circuit Diagrams and Symbols

    Teaches standard schematic symbols and diagram conventions used throughout the course. Students read and sketch basic circuit schematics accurately.

  • Lesson 5 • Atomic Structure and Electric Charge

    Covers protons, electrons, and charge polarity as the basis of electricity. Links atomic behavior to observable electrical phenomena in circuits.

Chapter 2See details

DC Circuit Analysis Techniques

  • Lesson 1 • Node Voltage Method

    Presents a systematic node-based approach to circuit analysis. Reduces complex circuits to a minimal set of equations using node voltages.

  • Lesson 2 • Mesh Current Method

    Introduces mesh analysis as an alternative to node analysis for planar circuits. Students choose the most efficient method for a given topology.

  • Lesson 3 • Kirchhoff's Voltage and Current Laws

    Introduces KVL and KCL as universal conservation principles. Students write and solve loop and node equations for multi-branch circuits.

  • Lesson 4 • Series and Parallel Resistor Circuits

    Covers equivalent resistance formulas for series and parallel configurations. Students simplify multi-resistor networks into single equivalent values.

  • Lesson 5 • Thevenin and Norton Equivalents

    Teaches circuit simplification using equivalent source models. Students replace complex networks with two-element equivalents for load analysis.

  • Lesson 6 • Superposition Principle

    Applies superposition to circuits with multiple independent sources. Students isolate each source's contribution and sum results.

Chapter 3See details

Capacitors and Inductors

  • Lesson 1 • Capacitors in Series and Parallel

    Derives equivalent capacitance for series and parallel combinations. Students simplify capacitor networks for circuit analysis.

  • Lesson 2 • RC and RL Transient Responses

    Analyzes first-order circuit responses to step inputs using time constants. Students calculate voltage and current waveforms during charging and discharging.

  • Lesson 3 • Capacitor Construction and Behavior

    Explains how capacitors store charge on parallel plates and defines capacitance. Links physical construction to electrical characteristics.

  • Lesson 4 • Inductor Construction and Behavior

    Describes how inductors store energy in magnetic fields and defines inductance. Connects coil geometry to inductance value.

  • Lesson 5 • Inductors in Series and Parallel

    Derives equivalent inductance formulas and addresses mutual inductance. Students combine inductors and account for coupling effects.

Chapter 4See details

AC Circuit Fundamentals

  • Lesson 1 • Impedance of R, L, and C Elements

    Defines impedance as the AC generalization of resistance. Students compute impedance for each element type at a given frequency.

  • Lesson 2 • AC Circuit Analysis with Phasors

    Applies KVL, KCL, and Ohm's Law in phasor domain to AC circuits. Students solve for phasor voltages and currents in series and parallel AC networks.

  • Lesson 3 • Phasor Representation of AC Signals

    Converts sinusoidal time-domain signals into phasor notation. Enables algebraic manipulation of AC quantities instead of differential equations.

  • Lesson 4 • Sinusoidal Waveform Characteristics

    Defines amplitude, frequency, period, and phase for sinusoidal signals. Students extract all waveform parameters from equations and graphs.

  • Lesson 5 • AC Power: Real, Reactive, and Apparent

    Distinguishes real, reactive, and apparent power and introduces power factor. Students calculate each power type and interpret power triangles.

Chapter 5See details

Resonance and Frequency Response

  • Lesson 1 • Passive Filter Design

    Covers low-pass, high-pass, band-pass, and band-stop filter topologies. Students select component values to achieve specified cutoff frequencies.

  • Lesson 2 • Frequency Response and Bode Plots

    Introduces transfer functions and Bode magnitude and phase plots. Students sketch and interpret frequency response curves for basic circuits.

  • Lesson 3 • Practical Filter Considerations

    Addresses real-world filter limitations including component tolerances and loading effects. Students evaluate filter performance under non-ideal conditions.

  • Lesson 4 • Series RLC Resonance

    Derives the resonant frequency of a series RLC circuit and analyzes impedance behavior. Students calculate resonant frequency, bandwidth, and Q factor.

  • Lesson 5 • Parallel RLC Resonance

    Analyzes parallel resonance and contrasts it with series resonance. Students identify tank circuit behavior and compute parallel resonant parameters.

Chapter 6See details

Semiconductor Devices and Diodes

  • Lesson 1 • Rectifier Circuits

    Analyzes half-wave and full-wave rectifier topologies for AC-to-DC conversion. Students calculate output voltage, ripple, and PIV ratings.

  • Lesson 2 • Diode Circuit Models

    Introduces ideal, constant-voltage-drop, and small-signal diode models. Students select the appropriate model for a given analysis task.

  • Lesson 3 • Zener Diodes and Voltage Regulation

    Covers Zener breakdown and its use in shunt voltage regulators. Students design simple Zener regulator circuits with appropriate resistor values.

  • Lesson 4 • Semiconductor Physics Basics

    Covers intrinsic and extrinsic semiconductors, doping, and carrier types. Provides the physical basis for understanding p-n junction behavior.

  • Lesson 5 • Special-Purpose Diodes

    Surveys LEDs, Schottky, and photodiodes and their unique characteristics. Students match diode type to application requirements.

  • Lesson 6 • P-N Junction and Diode Operation

    Explains depletion region formation and forward/reverse bias behavior. Students predict diode conduction states in circuit contexts.

Chapter 7See details

Bipolar Junction Transistors

  • Lesson 1 • BJT Switching Circuits

    Applies BJT saturation and cutoff regions to digital switching applications. Students design transistor switches for driving loads from logic signals.

  • Lesson 2 • Common-Collector and Common-Base Configurations

    Covers emitter-follower and common-base amplifiers and their trade-offs. Students select the appropriate configuration for impedance matching tasks.

  • Lesson 3 • Common-Emitter Amplifier

    Analyzes the common-emitter configuration for voltage gain and impedance. Students compute gain, input impedance, and output impedance.

  • Lesson 4 • DC Biasing of BJT Circuits

    Covers fixed-bias, voltage-divider, and emitter-stabilized bias configurations. Students calculate quiescent operating points for stable amplifier design.

  • Lesson 5 • BJT Structure and Operating Regions

    Describes NPN and PNP transistor structures and their four operating regions. Students identify the active, saturation, cutoff, and breakdown regions.

  • Lesson 6 • BJT Small-Signal Model

    Introduces the hybrid-pi and T models for AC small-signal analysis. Students replace the BJT with its equivalent model to find gain and impedance.

Chapter 8See details

Operational Amplifiers and Applications

  • Lesson 1 • Integrator and Differentiator Circuits

    Replaces feedback resistors with capacitors to perform mathematical operations. Students analyze integrator and differentiator output waveforms.

  • Lesson 2 • Inverting and Non-Inverting Amplifiers

    Derives closed-loop gain expressions for both fundamental configurations. Students select resistor values to achieve a specified gain.

  • Lesson 3 • Summing, Difference, and Instrumentation Amplifiers

    Extends op-amp analysis to multi-input and differential configurations. Students design summing mixers and differential amplifiers for sensor applications.

  • Lesson 4 • Comparators and Schmitt Triggers

    Uses op-amps in open-loop and positive-feedback configurations for switching. Students design comparators with hysteresis to eliminate output chatter.

  • Lesson 5 • Ideal Op-Amp Characteristics

    Defines infinite gain, infinite input impedance, and zero output impedance as ideal op-amp properties. Students apply the virtual short and virtual open concepts.

  • Lesson 6 • Op-Amp Non-Ideal Parameters

    Addresses offset voltage, bias current, slew rate, and bandwidth limitations. Students evaluate how non-ideal parameters affect circuit performance.

Certification

Your valid completion certificate

This course is for you:

  • Hobbyist makers: ready to move beyond trial-and-error breadboard experiments.

  • Electrical engineering students: needing a stronger conceptual grip on analog circuits.

  • Mechanical engineers: expanding their skill set to include basic electronics knowledge.

  • Career changers: entering hardware, robotics, or embedded systems from unrelated fields.

  • Technicians: seeking the theory behind the equipment they already service daily.

  • STEM educators: building personal expertise before teaching electronics to their students.

Related Courses

FAQs

Who is Dedika?

Is the certificate valid in Pakistan?

Are the courses free?

What is the course workload?

What are the courses like?

How do the courses work?

What is the duration of the courses?

What is the cost or price of the courses?

What is an EAD or online course and how does it work?

PDF Course