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Semiconductor Course
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Semiconductor Course

Master semiconductor physics, device operation, and fabrication from the atomic level up to advanced CMOS scaling. This course covers everything from p-n junctions and transistors to FinFETs, power devices, and optoelectronics. Build the rigorous technical foundation that semiconductor engineering roles demand.

Dedika for Business

What you will learn:

You will develop a thorough understanding of semiconductor physics, including energy band theory, carrier transport, and doping principles. You will analyze p-n junction behavior, BJT amplifier circuits, and MOSFET operation across all bias regions. The course covers CMOS fabrication processes, device characterization methods, and advanced device architectures such as FinFETs and SOI transistors. You will also explore power semiconductors, optoelectronic devices, analog IC design, and TCAD simulation tools. By the end, you will be equipped to analyze, design, and evaluate semiconductor devices at a professional engineering level.

How you study in practice Semiconductor Course

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Course Content

8 Chapters • 37 LessonsDuration between 4 and 360 hours (you decide)

Chapter 1See details

Foundations of Semiconductor Physics

  • Lesson 1 • Atomic Structure and Bonding

    Covers electron configuration, covalent bonding, and crystal lattice formation in semiconductors. Establishes the atomic basis for all subsequent electrical behavior.

  • Lesson 2 • Carrier Transport Mechanisms

    Covers drift and diffusion as the two primary carrier transport processes. Connects electric field and concentration gradients to current flow in semiconductors.

  • Lesson 3 • Intrinsic Semiconductor Properties

    Analyzes pure semiconductor behavior, intrinsic carrier concentration, and thermal generation of electron-hole pairs. Provides the baseline for understanding doped materials.

  • Lesson 4 • Energy Band Theory

    Explains valence and conduction bands, bandgap energy, and the distinction between conductors, insulators, and semiconductors. Directly links atomic bonding to macroscopic conductivity.

Chapter 2See details

Doping and Extrinsic Semiconductors

  • Lesson 1 • Donor and Acceptor Impurities

    Introduces n-type and p-type doping using Group V and Group III elements. Explains ionization energy and how dopants shift the Fermi level.

  • Lesson 2 • Mobility and Resistivity in Doped Materials

    Examines how impurity scattering reduces carrier mobility and increases resistivity. Connects doping concentration to measurable electrical parameters.

  • Lesson 3 • Diffusion and Ion Implantation Profiles

    Describes how dopants are introduced and distributed in semiconductor wafers via diffusion and ion implantation. Prepares students for process integration topics.

  • Lesson 4 • Carrier Concentration Calculations

    Applies charge neutrality and mass action law to compute majority and minority carrier densities. Builds quantitative skills essential for device design.

Chapter 3See details

p-n Junction Fundamentals

  • Lesson 1 • Junction Formation and Built-in Potential

    Explains how diffusion and drift establish equilibrium at a p-n junction. Derives built-in potential from doping concentrations and Fermi level alignment.

  • Lesson 2 • Non-Ideal Diode Effects

    Examines generation-recombination current, series resistance, and high-injection effects that cause deviation from ideal behavior. Prepares students for real device characterization.

  • Lesson 3 • Junction Capacitance and Breakdown

    Covers depletion and diffusion capacitance models and avalanche and Zener breakdown mechanisms. Links junction parameters to high-frequency and protection circuit design.

  • Lesson 4 • Forward and Reverse Bias Behavior

    Analyzes minority carrier injection under forward bias and depletion widening under reverse bias. Derives the ideal diode equation from minority carrier diffusion.

  • Lesson 5 • Depletion Approximation Analysis

    Applies the depletion approximation to solve for charge density, electric field, and potential profiles. Enables quantitative junction design for specific breakdown voltages.

Chapter 4See details

Semiconductor Fabrication Processes

  • Lesson 1 • Thermal Oxidation

    Analyzes dry and wet oxidation kinetics using the Deal-Grove model and oxide quality factors. Connects oxidation parameters to gate dielectric and isolation oxide properties.

  • Lesson 2 • Crystal Growth and Wafer Preparation

    Covers Czochralski and float-zone crystal growth, wafer slicing, and surface preparation. Establishes starting material quality requirements for device fabrication.

  • Lesson 3 • Thin Film Deposition Techniques

    Covers CVD, PVD, and ALD methods for depositing dielectrics, metals, and polysilicon. Links deposition parameters to film conformality, stress, and composition.

  • Lesson 4 • CMOS Process Integration

    Sequences the complete CMOS fabrication flow from well formation to metallization. Demonstrates how unit processes combine to form functional transistors.

  • Lesson 5 • Photolithography and Pattern Transfer

    Describes the photolithography sequence from resist coating to development and etch. Explains resolution limits and critical dimension control.

Chapter 5See details

Bipolar Junction Transistors

  • Lesson 1 • DC Biasing and Load Line Analysis

    Applies Kirchhoff's laws to establish stable DC operating points for BJT amplifiers. Covers fixed-bias, voltage-divider, and emitter-stabilized configurations.

  • Lesson 2 • Current Gain and Transport Mechanisms

    Derives common-emitter current gain from minority carrier transport across the base. Identifies factors limiting gain including base width and recombination.

  • Lesson 3 • Small-Signal Models and Amplifiers

    Introduces the hybrid-pi and T-models for small-signal analysis of BJT amplifier stages. Computes voltage gain, input impedance, and output impedance.

  • Lesson 4 • BJT Structure and Operating Regions

    Describes npn and pnp transistor geometry and defines active, saturation, and cutoff regions. Establishes the physical basis for transistor switching and amplification.

  • Lesson 5 • Frequency Response of BJT Amplifiers

    Analyzes low- and high-frequency gain roll-off using coupling capacitors and junction capacitances. Introduces transition frequency and gain-bandwidth product.

Chapter 6See details

Metal-Oxide-Semiconductor Fundamentals

  • Lesson 1 • MOSFET I-V Characteristics

    Derives drain current equations for linear and saturation regions of n-channel and p-channel MOSFETs. Connects charge-control model to measurable device output curves.

  • Lesson 2 • Threshold Voltage Derivation

    Derives threshold voltage from oxide charge, work function difference, and depletion charge. Enables quantitative design of MOSFET switching characteristics.

  • Lesson 3 • MOS Capacitor Physics

    Examines accumulation, depletion, and inversion in MOS structures under applied gate bias. Establishes the charge-control model underlying all MOSFET analysis.

  • Lesson 4 • MOSFET Small-Signal Model and Amplifiers

    Develops the small-signal equivalent circuit and applies it to common-source, common-gate, and source-follower amplifier topologies. Computes gain and impedance for each configuration.

  • Lesson 5 • Short-Channel and Second-Order Effects

    Covers velocity saturation, channel length modulation, DIBL, and subthreshold conduction. Prepares students to understand performance limits in scaled devices.

Chapter 7See details

Semiconductor Device Characterization

  • Lesson 1 • Electrical Characterization Methods

    Covers I-V, C-V, and impedance measurements for diodes, MOSFETs, and BJTs. Establishes the link between measured curves and underlying device physics.

  • Lesson 2 • Physical and Chemical Analysis

    Introduces SEM, TEM, XRD, and SIMS for structural and compositional analysis of semiconductor devices. Connects physical measurements to process and device performance.

  • Lesson 3 • Noise Characterization

    Covers thermal, shot, and flicker noise sources in semiconductor devices and their measurement. Links noise parameters to circuit performance in analog and RF applications.

  • Lesson 4 • Reliability and Failure Analysis

    Examines TDDB, hot carrier injection, electromigration, and NBTI as primary reliability mechanisms. Prepares students to design accelerated lifetime tests.

Chapter 8See details

Advanced Semiconductor Devices and Scaling

  • Lesson 1 • Emerging Beyond-CMOS Devices

    Surveys tunnel FETs, negative capacitance FETs, and 2D material transistors as candidates to extend scaling. Evaluates their operating principles and current maturity.

  • Lesson 2 • CMOS Scaling Principles

    Applies constant-field and generalized scaling rules to predict performance, power, and density trends. Identifies physical limits that motivate new device architectures.

  • Lesson 3 • High-k Dielectrics and Metal Gates

    Explains why high-k gate dielectrics replace SiO2 and how metal gates eliminate polysilicon depletion. Covers material selection, interface quality, and integration challenges.

  • Lesson 4 • Silicon-on-Insulator Technology

    Covers fully depleted and partially depleted SOI device physics and their advantages for low-power operation. Addresses floating body effects and history dependence.

  • Lesson 5 • FinFET and Multi-Gate Transistors

    Analyzes FinFET geometry, electrostatic control, and fabrication compared to planar MOSFETs. Explains why multi-gate structures suppress short-channel effects at advanced nodes.

Certification

Your valid completion certificate

This course is for you:

  • Electrical engineering students: building a rigorous foundation before entering the workforce.

  • PCB or systems engineers: seeking to understand the devices inside their designs.

  • Test engineers: wanting to interpret device characterization data at a deeper level.

  • Physics graduates: transitioning into applied semiconductor research or device engineering.

  • Career changers: moving from general electronics into specialized chip industry roles.

  • Graduate researchers: needing solid device physics grounding for their thesis work.

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