
Switch-Mode Power Supply Course
Master the complete engineering process behind switch-mode power supplies, from semiconductor switching fundamentals to verified hardware prototypes. This course covers every major converter topology, control loop design, EMC compliance, and real-world testing techniques. Whether you're designing a flyback charger or a high-power full-bridge converter, you'll gain the analytical tools and practical skills to get it right.
What you will learn:
You will build a thorough understanding of power electronics, starting with switching waveforms, passive components, and semiconductor devices. You will analyze and design non-isolated topologies including buck, boost, and buck-boost converters, then move into isolated designs such as flyback, forward, and full-bridge converters. The course covers small-signal modeling, Bode plot analysis, and compensator synthesis so you can close stable control loops with confidence. You will configure commercial PWM controller ICs, design gate driver circuits, and apply EMC layout strategies to reduce emissions. The course concludes with a complete design workflow from specification and simulation through PCB layout, prototype bring-up, and efficiency optimization.
How you study in a practical way Switch-Mode Power Supply Course
How you practice Switch-Mode Power Supply Course
For companies who want to train their team
With Dedika for businesses, the course includes exercises and examples tailored to your own business and the way your company needs.
Course content
8 Chapters • 41 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFundamentals of Power Electronics
Fundamentals of Power Electronics
Lesson 1 • Energy Conversion Basics
Covers DC and AC power relationships, efficiency, and losses in electrical systems. Establishes the vocabulary and metrics used throughout the entire course.
Lesson 2 • Switching Waveforms and Duty Cycle
Introduces PWM signals, duty cycle control, and volt-second balance. These concepts underpin every converter topology covered in later chapters.
Lesson 3 • Passive Components in Power Circuits
Analyzes inductors, capacitors, and transformers under switching conditions. Provides component selection criteria critical to every SMPS topology.
Lesson 4 • Semiconductor Switching Devices
Examines MOSFETs, IGBTs, and diodes as controlled switches. Connects device characteristics to switching speed and conduction loss trade-offs.
Lesson 5 • Thermal Management Principles
Covers junction-to-ambient thermal resistance and heatsink sizing. Proper thermal design prevents device failure across all SMPS designs.
Chapter 2HideHide detailsSee detailsNon-Isolated DC-DC Converter Topologies
Non-Isolated DC-DC Converter Topologies
Lesson 1 • Continuous vs. Discontinuous Conduction
Compares CCM and DCM operation, boundary conditions, and their impact on control design. Prepares students for feedback loop design in the next chapter.
Lesson 2 • Buck-Boost and Inverting Topologies
Covers inverting buck-boost and non-inverting four-switch variants. Extends student ability to design converters requiring polarity inversion.
Lesson 3 • Buck Converter Analysis
Derives voltage conversion ratio, inductor current waveform, and output ripple for the buck converter. Forms the reference topology for all subsequent converter studies.
Lesson 4 • Component Stress and Selection
Applies RMS and peak current formulas to select switches, diodes, inductors, and capacitors. Bridges theoretical analysis to practical component procurement.
Lesson 5 • Boost Converter Analysis
Analyzes step-up voltage conversion, diode stress, and capacitor ripple in boost converters. Highlights differences in switch and diode current stress versus the buck.
Chapter 3HideHide detailsSee detailsFeedback Control and Stability
Feedback Control and Stability
Lesson 1 • Compensator Design Techniques
Designs Type I, II, and III compensators to achieve target phase margin and bandwidth. Students apply these compensators to real converter designs.
Lesson 2 • Control Loop Fundamentals
Introduces open-loop and closed-loop concepts, error amplifiers, and reference voltage. Establishes the control framework applied to every regulated converter.
Lesson 3 • Stability Verification Methods
Covers injection-based loop gain measurement and simulation verification techniques. Ensures students can validate stability before hardware testing.
Lesson 4 • Bode Plot Analysis
Constructs gain and phase Bode plots from transfer functions and identifies stability margins. Directly enables compensator design in the following section.
Lesson 5 • Small-Signal Modeling
Derives averaged small-signal models for buck and boost converters using state-space averaging. Provides the mathematical foundation for Bode plot analysis.
Chapter 4HideHide detailsSee detailsIsolated Converter Topologies
Isolated Converter Topologies
Lesson 1 • Half-Bridge and Full-Bridge Converters
Covers bridge topology operation, shoot-through prevention, and transformer volt-second balance. Targets medium-to-high power SMPS applications above 200 W.
Lesson 2 • Transformer Design for SMPS
Covers core material selection, turns ratio, and winding design for high-frequency transformers. Provides the component knowledge required for all isolated topologies.
Lesson 3 • Resonant and LLC Converters
Introduces series resonant and LLC topologies, zero-voltage switching, and frequency modulation control. Bridges isolated topology knowledge toward high-efficiency advanced designs.
Lesson 4 • Forward Converter Design
Analyzes single-switch and two-switch forward converters, core reset methods, and output filter design. Extends student capability to higher-power single-switch isolated designs.
Lesson 5 • Flyback Converter Design
Derives flyback operation in CCM and DCM, including clamp circuits and leakage energy recovery. The flyback is the most common isolated topology in low-power SMPS.
Chapter 5HideHide detailsSee detailsPWM Controller ICs and Gate Drivers
PWM Controller ICs and Gate Drivers
Lesson 1 • Protection and Fault Management
Implements overcurrent, overvoltage, and thermal protection using controller IC features. Fault management is mandatory for reliable SMPS operation in real products.
Lesson 2 • Gate Driver Circuit Design
Designs gate drive circuits for high-side and low-side switches, including bootstrap and isolated drivers. Proper gate drive prevents shoot-through and reduces switching losses.
Lesson 3 • Voltage-Mode PWM Controllers
Examines voltage-mode controller architecture, oscillator programming, and soft-start configuration. Connects IC-level design to the converter topologies studied previously.
Lesson 4 • Current-Mode PWM Controllers
Covers peak current sensing, slope compensation, and current-mode control advantages. Current-mode control improves transient response and simplifies loop compensation.
Lesson 5 • Startup and Housekeeping Circuits
Covers startup resistor chains, auxiliary windings, and bias supply design for controller ICs. Reliable startup is essential for SMPS operation across the full input voltage range.
Chapter 6HideHide detailsSee detailsElectromagnetic Compatibility in SMPS
Electromagnetic Compatibility in SMPS
Lesson 1 • Input EMI Filter Design
Designs LC input filters for differential-mode and common-mode attenuation. Correct filter design prevents noise from propagating to the AC mains or input bus.
Lesson 2 • EMC Pre-Compliance Testing
Describes near-field probing, LISN-based conducted emission measurement, and pre-compliance test setups. Pre-compliance testing reduces costly formal test failures.
Lesson 3 • EMC Fundamentals for Power Supplies
Introduces conducted and radiated emission mechanisms, common-mode and differential-mode noise. Establishes the EMC framework applied throughout this chapter.
Lesson 4 • Shielding and Filtering Techniques
Covers enclosure shielding, feedthrough capacitors, and ferrite bead application. Supplements PCB layout when additional emission reduction is required.
Lesson 5 • PCB Layout for Low Emissions
Applies current loop minimization, ground plane strategy, and component placement to reduce emissions. PCB layout is the most cost-effective EMC mitigation tool.
Chapter 7HideHide detailsSee detailsPower Factor Correction Techniques
Power Factor Correction Techniques
Lesson 1 • Bridgeless and Totem-Pole PFC
Introduces bridgeless and GaN-based totem-pole PFC topologies for higher efficiency. Extends student capability to state-of-the-art PFC designs above 93% efficiency.
Lesson 2 • Average Current-Mode PFC Control
Implements average current-mode control using a multiplier-based PFC controller IC. This control method achieves low THD and high power factor across the load range.
Lesson 3 • Boost PFC Topology and Operation
Analyzes the continuous conduction mode boost PFC converter operating from rectified AC. Provides the topology foundation for active PFC controller design.
Lesson 4 • Passive PFC Methods
Examines valley-fill circuits and input inductors as low-cost passive PFC solutions. Establishes performance baselines before introducing active PFC topologies.
Lesson 5 • Power Factor and Harmonic Distortion
Defines power factor, total harmonic distortion, and their impact on AC mains quality. Motivates PFC design by connecting harmonic limits to regulatory requirements.
Chapter 8HideHide detailsSee detailsSMPS Design, Testing, and Optimization
SMPS Design, Testing, and Optimization
Lesson 1 • Reliability and Stress Testing
Applies thermal imaging, burn-in, and accelerated stress testing to validate long-term reliability. Stress testing reveals marginal designs before production release.
Lesson 2 • Schematic Capture and Simulation
Builds a complete SMPS schematic and validates it through SPICE simulation before layout. Simulation catches design errors before costly PCB fabrication.
Lesson 3 • Design Specification and Topology Selection
Translates application requirements into electrical specifications and selects the optimal topology. Systematic specification prevents costly redesigns during prototype validation.
Lesson 4 • Efficiency Measurement and Optimization
Measures efficiency across load and input voltage, then applies targeted loss reduction techniques. Optimization closes the gap between simulated and measured performance.
Lesson 5 • Prototype Bring-Up and Debugging
Executes a safe, structured bring-up sequence and diagnoses common prototype failures. Systematic bring-up prevents component damage and accelerates debugging.
Lesson 6 • PCB Layout and Fabrication
Applies power loop, signal, and thermal layout rules to produce a manufacturable PCB. Layout quality directly determines EMC performance and thermal reliability.
Your valid completion certificate
This course is for you:
Electrical engineering students: ready to move beyond classroom circuit theory.
Embedded systems developers: who need to power their own hardware designs reliably.
Mechanical engineers: transitioning into roles that require power electronics knowledge.
Electronics hobbyists: building custom power supplies and wanting rigorous engineering foundations.
PCB designers: seeking to understand the power stages they route every day.
Junior hardware engineers: tasked with SMPS work without formal power electronics training.
What our students say
Your classes are perfect. I purchased the one-year package and finally have the opportunity to follow various topics of my interest without needing to change platforms... I thank you for everything you do, I've already recommended you to other people...

I like how the lessons are straight to the point and how I can switch chapters and skip content I don't need.

I like the content and the way videos are presented and transcribed, which speeds up the process!

The platform is fast, simple to use. The diversity of content and complementary videos really help with learning.

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