Build a comprehensive foundation in fundamental physics principles that govern the natural world. This course provides essential expertise in classical mechanics, thermodynamics, and optics, offering practical frameworks to analyze and explain diverse physical phenomena through quantitative approaches. Learn to apply Newton's laws to complex scenarios, understand energy and momentum principles, and explore wave mechanics through simple harmonic motion. Master the first and second laws of thermodynamics with real-world applications, from microscopic atomic systems to massive engines. Discover optical phenomena including interference, diffraction, and polarization of electromagnetic waves. Whether you're pursuing engineering, physical sciences, or technical careers requiring analytical problem-solving, this course equips you with the fundamental physics knowledge used by scientists and engineers to understand, predict, and optimize physical systems across all scales of nature.

General Physics

General Physics

Instructor: BITS Pilani Instructors Group
Access provided by IT Education Association
Recommended experience
Recommended experience
Beginner level
Basic mathematics including algebra and trigonometry, fundamental understanding of scientific concepts and problem-solving skills.
Recommended experience
Recommended experience
Beginner level
Basic mathematics including algebra and trigonometry, fundamental understanding of scientific concepts and problem-solving skills.
What you'll learn
Master Newton's laws and apply force, energy, and momentum principles to analyze mechanical systems and predict motion in diverse scenarios.
Understand thermodynamic principles and laws governing energy transfer, entropy, and system behavior from microscopic to macroscopic scales.
Explore simple harmonic motion and wave mechanics, analyze wave propagation, properties, and behaviors across different physical systems.
Apply optical concepts including wave-particle duality, interference, diffraction, and polarization to understand electromagnetic phenomena.
Skills you'll gain
- Trigonometry
- Vibrations
- Physical Science
- Analytical Skills
- Logical Reasoning
- Physics
- Research
- Computer Science
- Mechanics
- Mechanical Engineering
- Critical Thinking and Problem Solving
- Applied Mathematics
- Engineering Analysis
- Mathematical Theory & Analysis
- Science and Research
- Critical Thinking
- Problem Solving
- Software Development
- Engineering
Tools you'll learn
Details to know

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November 2025
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There are 10 modules in this course
In this module, you will learn the concept of force in physics and why forces are vectors. From Newton’s laws of motion, you will understand the concept of an inertial frame of reference and the relation between the acceleration of a system and the net force applied to it.
What's included
16 videos5 readings14 assignments
16 videos• Total 106 minutes
- Meet Your Instructor: Dr. PK Thiruvikraman• 1 minute
- Meet Your Instructor: Dr. E.S. Kannan • 1 minute
- Course Intro Video• 3 minutes
- Revisiting Newton’s Laws of Motion• 6 minutes
- Newton’s First Law of Motion• 7 minutes
- Newton’s Second Law of Motion• 10 minutes
- Newton’s Third Law of Motion• 5 minutes
- Force as a Vector and Net Force• 6 minutes
- Normal Reaction Force and Concept of Tension in a String• 11 minutes
- Static and Kinetic Friction• 8 minutes
- Embodiment of Newton’s Laws Through Free Body Diagrams• 7 minutes
- Two Masses One Pulley System• 8 minutes
- Advantages of Pulleys• 13 minutes
- More Problem-Solving to Acquaint Oneself with the Concepts Learnt: Part I• 8 minutes
- More Problem-Solving to Acquaint Oneself with the Concepts Learnt: Part II• 9 minutes
- Module Wrap-Up: Newton’s Laws of Motion and their Applications• 3 minutes
5 readings• Total 50 minutes
- Course Overview• 10 minutes
- Critical Structure & Information• 10 minutes
- Recommended Reading: Newton’s Laws of Motion• 10 minutes
- Recommended Reading: Free Body Diagram• 10 minutes
- Recommended Reading: Application of Newton’s Laws Through Demonstrative Problems• 10 minutes
14 assignments• Total 153 minutes
- Practice Quiz: Revisiting Newton’s Laws of Motion• 3 minutes
- Practice Quiz: Newton’s First Law of Motion• 3 minutes
- Practice Quiz: Newton’s Second Law of Motion• 24 minutes
- Practice Quiz: Newton’s Third Law of Motion• 3 minutes
- Practice Quiz: Force as a Vector and Net Force• 6 minutes
- Practice Quiz: Normal Reaction Force and Concept of Tension in a String• 15 minutes
- Practice Quiz: Static and Kinetic Friction• 3 minutes
- Practice Quiz : Embodiment of Newton’s Laws Through Free Body Diagrams• 6 minutes
- Practice Quiz: Two Masses One Pulley System• 6 minutes
- Practice Quiz : Advantages of Pulleys• 6 minutes
- Practice Quiz : More Problem-Solving to Acquaint Oneself with the Concepts Learnt: Part I• 9 minutes
- Practice Quiz : More Problem-Solving to Acquaint Oneself with the Concepts Learnt: Part II• 9 minutes
- Let's Practice: Newton’s Laws of Motion and their Applications• 30 minutes
- Test Yourself: Newton’s Laws of Motion and their Applications• 30 minutes
In this module, you will learn the principle of work done by a force and how it affects the energy contained in a body. You will also learn the implications of the conservation of momentum in real and simple real-life scenarios.
What's included
15 videos3 readings16 assignments
15 videos• Total 126 minutes
- Work Done by an External Force​• 13 minutes
- Kinetic Energy• 6 minutes
- Work Energy Theorem• 8 minutes
- Power as Rate of Doing Work• 5 minutes
- Gravitational Potential Energy• 12 minutes
- Spring–Mass System: Elastic Potential Energy• 8 minutes
- Conservation of Mechanical Energy• 7 minutes
- Conservative Forces and Potential Energy• 11 minutes
- Problems Related to Potential Energy and Conservation of Energy: Part I• 13 minutes
- Problems Related to Potential Energy and Conservation of Energy: Part II• 9 minutes
- Impulse and Momentum• 7 minutes
- Conservation of Linear Momentum• 8 minutes
- Elastic, Inelastic, and Completely Inelastic Collisions• 8 minutes
- Two Body Collisions• 8 minutes
- Module Wrap-Up: Conservation Principles: Energy and Momentum• 4 minutes
3 readings• Total 90 minutes
- Recommended Reading: Work and Energy• 30 minutes
- Recommended Reading: Potential Energy and Conservation of Energy• 30 minutes
- Recommended Reading: Conservation of Momentum• 30 minutes
16 assignments• Total 150 minutes
- Practice Quiz: Work Done by an External Force​• 12 minutes
- Practice Quiz: Kinetic Energy• 9 minutes
- Practice Quiz: Work Energy Theorem• 6 minutes
- Practice Quiz: Power as Rate of Doing Work• 3 minutes
- Practice Quiz: Gravitational Potential Energy• 3 minutes
- Practice Quiz: Spring–Mass System: Elastic Potential Energy• 6 minutes
- Practice Quiz: Conservation of Mechanical Energy• 6 minutes
- Practice Quiz: Conservative Forces and Potential Energy• 3 minutes
- Practice Quiz: Problems Related to Potential Energy and Conservation of Energy: Part I• 6 minutes
- Practice Quiz: Problems Related to Potential Energy and Conservation of Energy: Part II• 6 minutes
- Practice Quiz: Impulse and Momentum• 6 minutes
- Practice Quiz: Conservation of Linear Momentum• 9 minutes
- Practice Quiz: Elastic, Inelastic, and Completely Inelastic Collisions• 3 minutes
- Practice Quiz: Two Body Collisions• 12 minutes
- Let's Practice: Conservation Principles: Energy and Momentum• 30 minutes
- Test Yourself: Conservation Principles: Energy and Momentum• 30 minutes
Physical systems describing periodic motion are possibly the simplest and most precise way to start exploring more complex phenomena in nature. In this module, you will learn the basic dynamics of a single degree of freedom performing a periodic motion. You will also learn how a simple damping effect can make the system more realistic.
What's included
11 videos2 readings12 assignments
11 videos• Total 92 minutes
- Importance of Harmonic Oscillators• 7 minutes
- Mathematical Definition of Simple Harmonic Oscillator• 7 minutes
- Solution of the Equation of a Harmonic Oscillator• 9 minutes
- Determination of Constants of Integration• 9 minutes
- Amplitude, Frequency, Phase and Energy of an Oscillator• 8 minutes
- Damping in Real-World Oscillators• 9 minutes
- Mathematical Modeling of Damping• 8 minutes
- Solution of Equation of Damped Harmonic Oscillator • 10 minutes
- Amplitude and Energy Decay in Damped Harmonic Oscillator• 7 minutes
- Problems Concerning Damped Harmonic Oscillator• 15 minutes
- Module Wrap-Up: Simple and Damped Harmonic Motion• 4 minutes
2 readings• Total 60 minutes
- Recommended Reading: Simple Harmonic Motion• 30 minutes
- Recommended Reading: Damped Simple Harmonic Motion• 30 minutes
12 assignments• Total 120 minutes
- Practice Quiz: Importance of Harmonic Oscillators• 6 minutes
- Practice Quiz: Mathematical Definition of Simple Harmonic Oscillator• 3 minutes
- Practice Quiz: Solution of the Equation of a Harmonic Oscillator• 3 minutes
- Practice Quiz: Determination of Constants of Integration• 3 minutes
- Practice Quiz: Amplitude, Frequency, Phase and Energy of an Oscillator• 15 minutes
- Practice Quiz: Damping in Real-World Oscillators• 3 minutes
- Practice Quiz: Mathematical Modeling of Damping• 9 minutes
- Practice Quiz: Solution of Equation of Damped Harmonic Oscillator • 6 minutes
- Practice Quiz: Amplitude and Energy Decay in Damped Harmonic Oscillator• 9 minutes
- Practice Quiz: Problems Concerning Damped Harmonic Oscillator• 3 minutes
- Let's Practice: Simple and Damped Harmonic Motion• 30 minutes
- Test Yourself: Simple and Damped Harmonic Motion• 30 minutes
Thermodynamics is about how everyday systems such as engines and refrigerators to microscopic systems of atoms work through energy transfer. In this module, you will gain a thorough understanding of how to quantify the transfer of heat and work into or out of such systems. This module will further help you develop a fundamental understanding of the basics of thermodynamics.
What's included
11 videos3 readings12 assignments
11 videos• Total 88 minutes
- Physical Systems and Thermodynamic Laws• 7 minutes
- Work, Internal Energy, and Heat Using Cylinder–Piston System• 7 minutes
- First Law of Thermodynamics • 9 minutes
- Work Done at Constant Volume and Constant Pressure • 7 minutes
- Specific Heat Capacity • 8 minutes
- Work Done in an Isothermal Process• 7 minutes
- Work Done in an Adiabatic Process• 12 minutes
- Introduction to Carnot Cycle• 8 minutes
- Processes Occurring in a Carnot Cycle• 10 minutes
- Calculating Work Done in Thermodynamic Processes• 9 minutes
- Module Wrap-Up: First Law of Thermodynamics• 5 minutes
3 readings• Total 90 minutes
- Recommended Reading: Work and Heat• 30 minutes
- Recommended Reading: The First Law of Thermodynamics• 30 minutes
- Recommended Reading: Carnot Cycle• 30 minutes
12 assignments• Total 147 minutes
- Practice Quiz: Physical Systems and Thermodynamic Laws• 6 minutes
- Practice Quiz: Work, Internal Energy, and Heat Using Cylinder–Piston System• 9 minutes
- Practice Quiz: First Law of Thermodynamics • 3 minutes
- Practice Quiz: Work Done at Constant Volume and Constant Pressure • 12 minutes
- Practice Quiz: Specific Heat Capacity • 21 minutes
- Practice Quiz: Work Done in an Isothermal Process• 6 minutes
- Practice Quiz: Work Done in an Adiabatic Process• 3 minutes
- Practice Quiz: Introduction to Carnot Cycle• 6 minutes
- Practice Quiz: Processes Occurring in a Carnot Cycle• 6 minutes
- Practice Quiz: Calculating Work Done in Thermodynamic Processes• 15 minutes
- Let's Practice: First Law of Thermodynamics• 30 minutes
- Test Yourself: First Law of Thermodynamics• 30 minutes
The second law of thermodynamics is a universal law that could be observed in the tiniest particles to massive black holes. In this module, you will state and understand the second law of thermodynamics. The module will also discuss the concept of entropy change and its relevance to the second law of thermodynamics.
What's included
12 videos2 readings9 assignments
12 videos• Total 72 minutes
- Classification of Thermodynamic Processes  • 6 minutes
- Heat Engine  • 5 minutes
- Difference Between a Heat Engine and Refrigerator • 5 minutes
- Second Law of Thermodynamics  • 9 minutes
- Coefficient of Performance of Carnot Cycle • 6 minutes
- Carnot’s Refrigerator • 5 minutes
- Finding the Efficiency of a Heat Engine • 5 minutes
- Entropy• 6 minutes
- Entropy Change in Reversible and Irreversible Processes• 8 minutes
- Second Law and Change in Entropy  • 6 minutes
- Calculating Change in Entropy   • 8 minutes
- Module Wrap-Up: Second Law of Thermodynamics• 4 minutes
2 readings• Total 60 minutes
- Recommended Reading: Heat Engines and Refrigerators• 30 minutes
- Recommended Reading: Efficiency of the Carnot Engine• 30 minutes
9 assignments• Total 117 minutes
- Practice Quiz: Classification of Thermodynamic Processes  • 6 minutes
- Practice Quiz: Heat Engine  • 9 minutes
- Practice Quiz: Difference Between a Heat Engine and Refrigerator • 6 minutes
- Practice Quiz: Second Law of Thermodynamics  • 9 minutes
- Practice Quiz: Carnot’s Refrigerator • 3 minutes
- Practice Quiz: Entropy  • 6 minutes
- Practice Quiz: Entropy Change in Reversible and Irreversible Processes• 18 minutes
- Let's Practice: Second Law of Thermodynamics• 30 minutes
- Test Yourself: Second Law of Thermodynamics• 30 minutes
In this module, the fundamentals of wave propagation will be discussed. The module will highlight different kinds of waves, their properties, and the effect of the medium on wave propagation. The exchange of energy when two waves superimpose with each other and the nature of the resulting waveform will be dealt qualitatively and quantitatively. You will also learn how to reconstruct any waveform by superposition of normal modes (Fourier theorem).
What's included
12 videos9 readings13 assignments
12 videos• Total 65 minutes
- Essence of Wave Motion: Introduction and Local View of Wave Propagation • 5 minutes
- Cause and Effect: Examples of Wave Disturbance• 5 minutes
- Longitudinal and Transverse Waves: Detailed Overview • 6 minutes
- Wave Equation and Its Implication • 5 minutes
- Huygens Model of Wave Propagation • 5 minutes
- Reflection, Refraction, and Diffraction• 5 minutes
- Sinusoidal Waveforms and Waves on a Long String • 5 minutes
- Wave Equation and Sinusoidal Solution• 6 minutes
- Energy of a Wave Motion: Tsunami and Earthquake • 6 minutes
- Standing Waves and Normal Mode Vibration • 8 minutes
- Superposition of Normal Waves and Fourier Theorem • 6 minutes
- Module Wrap-Up: Fundamentals of Wave Propagation• 4 minutes
9 readings• Total 90 minutes
- Recommended Reading: Essence of Wave Motion, and Cause and Effect• 10 minutes
- Recommended Reading: Longitudinal and Transverse Waves: Detailed Overview • 10 minutes
- Recommended Reading: Wave Equation and Its Implication • 10 minutes
- Recommended Reading: Huygens Model of Wave Propagation • 10 minutes
- Recommended Reading: Reflection, Refraction, and Diffraction• 10 minutes
- Recommended Reading: Wave Equation and Sinusoidal Solution • 10 minutes
- Recommended Reading: Energy of a Wave Motion: Tsunami and Earthquake • 10 minutes
- Recommended Reading: Standing Waves and Normal Mode Vibration • 10 minutes
- Recommended Reading: Superposition of Normal Waves and Fourier Theorem • 10 minutes
13 assignments• Total 105 minutes
- Practice Quiz: Essence of Wave Motion: Introduction and Local View of Wave Propagation • 3 minutes
- Practice Quiz: Cause and Effect: Examples of Wave Disturbance• 3 minutes
- Practice Quiz: Longitudinal and Transverse Waves: Detailed Overview • 6 minutes
- Practice Quiz: Wave Equation and Its Implication • 6 minutes
- Practice Quiz: Huygens Model of Wave Propagation • 3 minutes
- Practice Quiz: Reflection, Refraction, and Diffraction• 3 minutes
- Practice Quiz: Sinusoidal Waveforms and Waves on a Long String • 6 minutes
- Practice Quiz: Wave Equation and Sinusoidal Solution • 3 minutes
- Practice Quiz: Energy of a Wave Motion: Tsunami and Earthquake • 6 minutes
- Practice Quiz: Standing Waves and Normal Mode Vibration • 3 minutes
- Practice Quiz: Superposition of Normal Waves and Fourier Theorem • 3 minutes
- Let's Practice: Fundamentals of Wave Propagation• 30 minutes
- Test Yourself: Fundamentals of Wave Propagation• 30 minutes
This module deals with a detailed overview of light as an electromagnetic wave. The module will briefly discuss the interesting conundrum of wave–particle duality and the experiments that illustrate this phenomenon. The module will also give you a brief overview of how the transverse nature of the wave leads to interesting physical phenomena and the manner in which the energy of the electromagnetic wave gets redistributed as it propagates in different media.
What's included
8 videos6 readings9 assignments
8 videos• Total 50 minutes
- Light Waves and Their Dual Nature• 6 minutes
- Dual Nature of Light: Detailed Insight• 7 minutes
- Scattering of Electromagnetic Waves• 7 minutes
- Reflection and Refraction Effect of EM Waves• 7 minutes
- Matter Waves• 5 minutes
- De Broglie Wavelength of Matter Waves• 5 minutes
- Energy of an Electromagnetic Wave  • 8 minutes
- Module Wrap-Up: Wave Optics: Electromagnetic Waves• 5 minutes
6 readings• Total 60 minutes
- Recommended Reading: ​​Light Waves and Their Dual Nature• 10 minutes
- Recommended Reading: Dual Nature of Light: Detailed Insight• 10 minutes
- Recommended Reading: Simple Examples to Demonstrate Wave Nature of Light• 10 minutes
- Recommended Reading: Simple Examples to Demonstrate Particle Nature of Light• 10 minutes
- Recommended Reading: Energy of an Electromagnetic Wave  • 10 minutes
- Recommended Reading: Light as Electromagnetic Waves• 10 minutes
9 assignments• Total 81 minutes
- Practice Quiz: Light Waves and Their Dual Nature• 3 minutes
- Practice Quiz: Dual Nature of Light: Detailed Insight• 3 minutes
- Practice Quiz: Scattering of Electromagnetic Waves• 3 minutes
- Practice Quiz: Reflection and Refraction Effect of EM Waves• 3 minutes
- Practice Quiz: Matter Waves• 3 minutes
- Practice Quiz: De Broglie Wavelength of Matter Waves• 3 minutes
- ​Practice Quiz: Energy of an Electromagnetic Wave • 3 minutes
- Let's Practice: Wave Optics: Electromagnetic Waves• 30 minutes
- Test Yourself: Wave Optics: Electromagnetic Waves• 30 minutes
In this module, you will be introduced to the superposition of waves. The module will also describe how the interference pattern caused by the superposition of coherent waves gives rise to different optical patterns. The conditions for bright and dark fringes due to the interference effect will be discussed in detail. Experiments such as Newton’s ring will be used to illustrate the significance of path difference and phase difference in giving rise to interference patterns.
What's included
12 videos9 readings13 assignments
12 videos• Total 67 minutes
- Coherent and Incoherent Light Sources• 5 minutes
- Constructive and Destructive Interference: Conditions• 6 minutes
- Michelson Interferometer• 6 minutes
- Application of Michelson Interferometer• 6 minutes
- Young’s Double Slit Experiment• 5 minutes
- Mathematical Expression for Bright and Dark Fringes: Simple Examples• 5 minutes
- Fresnel Biprism and Condition for Bright and Dark Fringes• 7 minutes
- Determination of Wavelength of Light Using Biprism• 7 minutes
- Determination of Thickness of Film Using Interference Effect• 6 minutes
- Thin Film Interference Due To Reflected Light• 5 minutes
- Thin Film Interference Due To Transmitted Light• 4 minutes
- Module Wrap-Up: Wave Optics: Interference• 6 minutes
9 readings• Total 90 minutes
- Recommended Reading: Coherent and Incoherent Light Sources• 10 minutes
- Recommended Reading: Constructive and Destructive Interference: Conditions• 10 minutes
- Recommended Reading: Michelson Interferometer• 10 minutes
- Recommended Reading: Application of Michelson Interferometer• 10 minutes
- Recommended Reading: Expression for Bright and Dark Fringes• 10 minutes
- Recommended Reading: Fresnel Biprism, and Condition for Bright and Dark Fringes• 10 minutes
- Recommended Reading: Determination of Wavelength of Light Using Biprism• 10 minutes
- Recommended Reading: Determination of Thickness of Film Using Interference Effect• 10 minutes
- Recommended Reading: Wave Optics: Interference• 10 minutes
13 assignments• Total 99 minutes
- ​Practice Quiz: Coherent and Incoherent Light Sources• 3 minutes
- ​Practice Quiz: Constructive and Destructive interference: Conditions• 6 minutes
- ​Practice Quiz: Michelson Interferometer• 3 minutes
- ​Practice Quiz: Application of Michelson Interferometer• 3 minutes
- ​Practice Quiz: Young’s Double Slit Experiment• 6 minutes
- ​Practice Quiz: Expression for Bright and Dark Fringes• 3 minutes
- Practice Quiz: Fresnel Biprism and Condition for Bright and Dark Fringes• 3 minutes
- Practice Quiz: Determination of Wavelength of Light Using Biprism• 3 minutes
- Practice Quiz: Determination of Thickness of Film Using Interference Effect• 3 minutes
- Practice Quiz: Thin Film Interference Due to Reflected Light• 3 minutes
- Practice Quiz: Thin Film Interference Due to Transmitted Light• 3 minutes
- Let's Practice: Wave Optics: Interference• 30 minutes
- Test Yourself: Wave Optics: Interference• 30 minutes
In this module, you will be introduced to the bending of light around the edges of an obstacle. The module will discuss the superposition of waves undergoing diffraction in detail. The module will further show experiments that produce diffraction patterns and highlight the expression for bright and dark fringes. It also illustrates how the diffraction effects are extensively used to study the structure of materials, which helps in predicting the properties.
What's included
11 videos12 readings12 assignments
11 videos• Total 68 minutes
- Diffraction Basics: Fresnel’s Assumption • 5 minutes
- Fresnel and Fraunhofer Diffraction: Basic Idea • 5 minutes
- Diffraction at a Single Aperture• 6 minutes
- Diffraction at a Single Aperture: Expression for Intensity • 8 minutes
- Interference Pattern of Multiple Slits • 7 minutes
- Mathematical Expression for Bright and Dark Fringes • 7 minutes
- Diffraction Limit in Optical Instrument and Concept of Resolution • 4 minutes
- X-Ray Diffraction • 7 minutes
- Bragg’s Law and Its Implication • 6 minutes
- Characterization of Material Using X-Ray Diffraction • 7 minutes
- Module Wrap-Up: Wave Optics: Diffraction• 6 minutes
12 readings• Total 120 minutes
- Recommended Reading: Diffraction Basics: Fresnel’s Assumption • 10 minutes
- Recommended Reading: Fresnel and Fraunhofer Diffraction: Basic Idea • 10 minutes
- Recommended Reading: Diffraction at a Single Aperture• 10 minutes
- Recommended Reading: Diffraction at a Single Aperture: Expression for Intensity • 10 minutes
- Recommended Reading: Interference Pattern of Multiple Slits • 10 minutes
- Recommended Reading: Mathematical Expression for Bright and Dark Fringes • 10 minutes
- Recommended Reading: Diffraction Fundamentals• 10 minutes
- Recommended Reading: Diffraction Limit in Optical Instrument and Concept of Resolution • 10 minutes
- Recommended Reading: X-Ray Diffraction • 10 minutes
- Recommended Reading: Bragg’s Law and Its Implication• 10 minutes
- Recommended Reading: Characterization of Material Using X-Ray Diffraction • 10 minutes
- Recommended Reading: Application of Diffraction• 10 minutes
12 assignments• Total 93 minutes
- Practice Quiz: Diffraction Basics: Fresnel’s Assumption • 6 minutes
- Practice Quiz: Fresnel and Fraunhofer Diffraction: Basic Idea • 3 minutes
- Practice Quiz: Diffraction at a Single Aperture• 3 minutes
- Practice Quiz: Diffraction at a Single Aperture: Expression for Intensity • 3 minutes
- Practice Quiz: Interference Pattern of Multiple Slits • 3 minutes
- Practice Quiz: Mathematical Expression for Bright and Dark Fringes • 3 minutes
- Practice Quiz: Diffraction Limit in Optical Instrument and Concept of Resolution • 3 minutes
- Practice Quiz: X-Ray Diffraction • 3 minutes
- Practice Quiz: Bragg’s Law and Its Implication • 3 minutes
- Practice Quiz: Characterization of Material Using X-Ray Diffraction • 3 minutes
- Let's Practice: Wave Optics: Diffraction• 30 minutes
- Test Yourself: Wave Optics: Diffraction• 30 minutes
In this module, you will study the transverse nature of light using the concept of electric field polarization. The module will dive deep into the changes that an electric field component of electromagnetic waves undergoes after reflection and refraction. The module will further discuss the investigation of polarization effects using polarizers and analyzers.
What's included
11 videos10 readings12 assignments
11 videos• Total 61 minutes
- Introduction: Polarized and Unpolarized Waves • 5 minutes
- Types of Polarization• 8 minutes
- Polarization by Reflection: Brewster’s Angle • 6 minutes
- Polarization by Refraction: Malus Law • 6 minutes
- Polaroid Sheet, Polarizer, and Analyzer • 5 minutes
- Experiment to Detect Plane Polarized Light• 5 minutes
- Optical Activity and Its Application • 4 minutes
- Optical Rotation and Specific Rotation • 5 minutes
- Production of Circularly and Elliptically Polarized Light • 7 minutes
- Detection of Circularly and Elliptically Polarized Light • 4 minutes
- Module Wrap-Up: Wave Optics: Polarization• 5 minutes
10 readings• Total 100 minutes
- Recommended Reading: Introduction: Polarized and Unpolarized Waves • 10 minutes
- Recommended Reading: Types of Polarization• 10 minutes
- Recommended Reading: Polarization by Reflection: Brewster’s Angle • 10 minutes
- Recommended Reading: Polarization by Refraction: Malus Law • 10 minutes
- Recommended Reading: Polaroid Sheet, Polarizer, and Analyzer • 10 minutes
- Recommended Reading: Experiment to Detect Plane Polarized Light• 10 minutes
- Recommended Reading: Optical Activity and Its Application • 10 minutes
- Recommended Reading: Optical Rotation and Specific Rotation• 10 minutes
- Recommended Reading: Production of Circularly and Elliptically Polarized Light • 10 minutes
- Course Summary• 10 minutes
12 assignments• Total 93 minutes
- Practice Quiz: Introduction: Polarized and Unpolarized Waves • 3 minutes
- Practice Quiz: Types of Polarization• 3 minutes
- Practice Quiz: Polarization by Reflection: Brewster’s Angle • 3 minutes
- Practice Quiz: Polarization by Refraction: Malus Law • 3 minutes
- Practice Quiz: Polaroid Sheet, Polarizer, and Analyzer • 3 minutes
- Practice Quiz: Experiment to Detect Plane Polarized Light• 3 minutes
- Practice Quiz: Optical Activity and Its Application • 3 minutes
- Practice Quiz: Optical Rotation and Specific Rotation • 6 minutes
- Practice Quiz: Production of Circularly and Elliptically Polarized Light • 3 minutes
- Practice Quiz: Detection of Circularly and Elliptically Polarized Light • 3 minutes
- Let's Practice: Wave Optics: Polarization• 30 minutes
- Test Yourself: Wave Optics: Polarization• 30 minutes
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Birla Institute of Technology & Science, Pilani (BITS Pilani) is one of only ten private universities in India to be recognised as an Institute of Eminence by the Ministry of Human Resource Development, Government of India. It has been consistently ranked high by both governmental and private ranking agencies for its innovative processes and capabilities that have enabled it to impart quality education and emerge as the best private science and engineering institute in India. BITS Pilani has four international campuses in Pilani, Goa, Hyderabad, and Dubai, and has been offering bachelor's, master’s, and certificate programmes for over 58 years, helping to launch the careers for over 1,00,000 professionals.
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