
Basic Electronics Course
Master the fundamentals of electronics from atomic theory to digital logic in one comprehensive course. You will analyse circuits, design amplifiers, and build power supplies using proven engineering methods. This course gives you the technical foundation to work confidently with real electronic systems.
What your team will master:
You will start with core electrical theory — voltage, current, resistance, and power — then move into DC and AC circuit analysis using Kirchhoff's laws, Thevenin's theorem, and phasor methods. You will study every major component, including diodes, transistors, capacitors, and op-amps, and learn how they behave in real circuits. Transistor amplifier design, operational amplifier applications, and digital logic fundamentals are all covered in depth. You will also gain hands-on knowledge of test equipment, PCB prototyping, and systematic troubleshooting methods used by working engineers.
How your team learns practically Basic Electronics Course
How your team practises Basic Electronics Course
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Course content
8 Chapters • 39 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Electrical Theory
Foundations of Electrical Theory
Lesson 1 • Atomic Structure and Electric Charge
It covers protons, electrons, and the origin of electric charge. It provides the physical basis for understanding current flow and material conductivity.
Lesson 2 • Ohm's Law and Power
It derives Ohm's Law and the power equation from first principles. Students apply these relationships to calculate unknowns in simple circuits.
Lesson 3 • Voltage, Current, and Resistance
It defines the three fundamental electrical quantities and their units. It connects these quantities to real-world circuit behavior.
Lesson 4 • Energy Sources and Circuit Basics
It introduces DC and AC sources, ground reference, and closed-loop circuit requirements. It builds the conceptual framework for circuit construction.
Chapter 2HideHide detailsSee detailsElectronic Components and Their Behavior
Electronic Components and Their Behavior
Lesson 1 • Inductors and Magnetic Principles
It covers inductance, magnetic fields, and energy storage in coils. It establishes the foundation for understanding transformers and AC reactance.
Lesson 2 • Capacitors: Storage and Behavior
It explains capacitance, dielectric materials, and charge/discharge behavior. It links capacitor properties to filtering and timing applications.
Lesson 3 • Diodes and Basic Semiconductor Devices
It introduces P-N junction behavior, diode characteristics, and common diode types. It prepares students for rectifier and protection circuit design.
Lesson 4 • Resistors: Types and Characteristics
It examines fixed, variable, and specialty resistors along with tolerance and power ratings. It connects resistor selection to circuit performance requirements.
Lesson 5 • Transistors as Switching and Amplifying Devices
It explains BJT and MOSFET operation in switching and amplification modes. It connects transistor behavior to practical circuit control applications.
Chapter 3HideHide detailsSee detailsDC Circuit Analysis Techniques
DC Circuit Analysis Techniques
Lesson 1 • Kirchhoff's Laws
It states KVL and KCL and applies them to multi-loop circuits. These laws form the basis for all systematic circuit analysis methods.
Lesson 2 • Series and Parallel Resistor Circuits
It derives equivalent resistance formulas for series and parallel configurations. Students calculate voltage, current, and power in each topology.
Lesson 3 • Thevenin and Norton Theorems
It simplifies complex networks into equivalent two-terminal models. It enables rapid load analysis without re-solving the entire circuit.
Lesson 4 • Mesh and Node Analysis
It applies mesh current and node voltage methods to complex resistive networks. It reduces circuit equations to efficient matrix-solvable form.
Lesson 5 • Superposition and Dependent Sources
It applies superposition to circuits with multiple independent sources. It extends analysis to circuits containing dependent voltage and current sources.
Chapter 4HideHide detailsSee detailsAC Circuit Analysis and Phasors
AC Circuit Analysis and Phasors
Lesson 1 • AC Power Analysis
It distinguishes real, reactive, and apparent power and defines power factor. Students calculate power quantities and understand power factor correction.
Lesson 2 • Phasor Representation and Complex Impedance
It transforms sinusoidal quantities into phasors and defines impedance for R, L, and C. It enables algebraic treatment of AC circuit equations.
Lesson 3 • AC Circuit Analysis with KVL and KCL
It applies Kirchhoff's laws in the phasor domain to solve AC circuits. It extends mesh and node methods to complex impedance networks.
Lesson 4 • Resonance in RLC Circuits
It analyzes series and parallel resonance conditions and quality factor. It connects resonance behavior to filter and tuning circuit design.
Lesson 5 • Sinusoidal Signals and Time-Domain Parameters
It defines amplitude, frequency, period, and phase of sinusoidal waveforms. It establishes the time-domain description used before phasor transformation.
Chapter 5HideHide detailsSee detailsDiode Circuits and Power Supplies
Diode Circuits and Power Supplies
Lesson 1 • Linear Voltage Regulator ICs
It introduces three-terminal linear regulator ICs for fixed and adjustable outputs. It covers thermal management and bypass capacitor requirements.
Lesson 2 • Clipper and Clamper Circuits
It constructs diode clipping and clamping circuits for waveform shaping. It predicts output waveforms for various input signals and bias conditions.
Lesson 3 • Rectifier Circuit Configurations
It analyzes half-wave, full-wave, and bridge rectifier topologies. It calculates output voltage, ripple, and diode stress for each configuration.
Lesson 4 • Filtering and Ripple Reduction
It uses capacitor and LC filters to smooth rectified output. It quantifies ripple voltage and selects filter components for target ripple specifications.
Lesson 5 • Zener Diode Voltage Regulation
It designs shunt regulators using Zener diodes for stable output voltage. It analyzes regulation performance under varying load and input conditions.
Chapter 6HideHide detailsSee detailsTransistor Amplifier Circuits
Transistor Amplifier Circuits
Lesson 1 • Multistage Amplifier Design
It cascades amplifier stages to achieve higher gain and optimized impedance matching. It analyzes overall gain, bandwidth, and loading effects between stages.
Lesson 2 • BJT Biasing and DC Operating Point
It establishes stable Q-point using voltage divider and emitter feedback biasing. Correct biasing prevents distortion and ensures linear amplification.
Lesson 3 • Frequency Response of Amplifiers
It analyzes low-frequency and high-frequency roll-off caused by coupling and parasitic capacitances. Students plot Bode diagrams and identify bandwidth limits.
Lesson 4 • Small-Signal BJT Amplifier Analysis
It uses the hybrid-pi model to analyze common-emitter, common-base, and common-collector configurations. It calculates voltage gain and impedance for each topology.
Lesson 5 • MOSFET Amplifier Configurations
It biases MOSFETs and analyzes common-source, common-drain, and common-gate stages. It compares MOSFET amplifier performance with BJT equivalents.
Chapter 7HideHide detailsSee detailsOperational Amplifiers and Applications
Operational Amplifiers and Applications
Lesson 1 • Integrators, Differentiators, and Active Filters
It implements op-amp integrator and differentiator circuits and extends them to active filter designs. It covers low-pass, high-pass, and band-pass Butterworth filter topologies.
Lesson 2 • Summing, Difference, and Instrumentation Amplifiers
It builds summing and difference amplifier circuits for signal mixing and rejection. It introduces the instrumentation amplifier for high-CMRR differential sensing.
Lesson 3 • Comparators and Waveform Generators
It uses op-amps as comparators with hysteresis and builds oscillator circuits. It generates square, triangular, and sine waveforms using feedback networks.
Lesson 4 • Ideal Op-Amp Characteristics
It defines ideal op-amp parameters and applies virtual short and virtual open rules. These rules simplify analysis of all feedback-based op-amp circuits.
Lesson 5 • Inverting and Non-Inverting Amplifiers
It designs and analyzes the two fundamental closed-loop amplifier configurations. It calculates closed-loop gain and input impedance for each topology.
Chapter 8HideHide detailsSee detailsDigital Electronics Fundamentals
Digital Electronics Fundamentals
Lesson 1 • Karnaugh Maps and Logic Minimization
It uses Karnaugh maps to minimize sum-of-products and product-of-sums expressions. It reduces gate count and propagation delay in combinational circuit designs.
Lesson 2 • Combinational Logic Circuit Design
It designs encoders, decoders, multiplexers, demultiplexers, and adder circuits. It implements specified truth tables using minimized gate-level logic.
Lesson 3 • Sequential Logic and Flip-Flops
It introduces SR, D, JK, and T flip-flops and their timing characteristics. It builds registers and counters as foundational sequential circuit elements.
Lesson 4 • Logic Gates and Boolean Algebra
It defines AND, OR, NOT, NAND, NOR, XOR gate operations and Boolean laws. It applies Boolean algebra to simplify logic expressions before implementation.
Lesson 5 • Number Systems and Binary Arithmetic
It converts between binary, octal, hexadecimal, and decimal number systems. It performs binary addition, subtraction, and introduces two's complement representation.
Your valid completion certificate
This course is for you:
Hobbyist makers: ready to move beyond kits into original circuit designs.
Mechanical engineers: expanding their skill set into electronics and embedded systems.
Computer science students: wanting hardware knowledge to complement their software background.
Career changers: pursuing technician or engineering roles in the electronics industry.
STEM educators: building deeper subject knowledge to teach electronics more confidently.
Robotics enthusiasts: needing solid circuit theory to support their hardware projects.
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