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Browse by Grade: 11th Grade

United States · Common Core State Standards

11th Grade Physics

A comprehensive exploration of the fundamental laws governing matter and energy through the lens of classical and modern physics. Students engage in rigorous mathematical modeling and inquiry based laboratory investigations to solve complex engineering problems.

4 units·47 topics·Ages 16-17

01Kinematics and the Geometry of Motion

13 topics·Weeks 1-9

Students analyze the motion of objects in one and two dimensions using mathematical functions and graphical representations. This unit establishes the foundational language of physics through vectors and coordinate systems.

Introduction to Physics and Measurement

Students will explore the nature of physics, scientific notation, significant figures, and unit conversions, establishing foundational quantitative skills.

Inquiry CircleCollaborative Problem-Solving
Vector Analysis and Motion in 1D: Position & Displacement

Developing the distinction between scalar and vector quantities while modeling constant velocity and acceleration. Students use motion maps and position time graphs to predict future states of a system.

Decision MatrixCase Study AnalysisInquiry Circle
Velocity and Speed in One Dimension

Students will define and calculate average and instantaneous velocity and speed, interpreting their meaning from position-time graphs.

Flipped ClassroomCollaborative Problem-Solving
Acceleration in One Dimension

Students will investigate constant acceleration, using velocity-time graphs and kinematic equations to solve problems.

Inquiry CircleProblem-Based Learning
Free Fall and Gravitational Acceleration

Students will apply kinematic equations to objects in free fall, understanding the constant acceleration due to gravity.

Simulation GameCase Study Analysis
Vector Operations: Addition and Subtraction

Students will learn to add and subtract vectors graphically and analytically, essential for two-dimensional motion.

Concept MappingCollaborative Problem-Solving
Projectile Motion and 2D Dynamics: Horizontal Launch

Investigating how orthogonal components of motion operate independently yet simultaneously. Students predict the trajectories of objects launched at various angles.

Simulation GameCollaborative Problem-Solving
Projectile Motion: Angled Launch

Students will analyze the trajectories of projectiles launched at an angle, calculating range, maximum height, and time of flight.

Project-Based LearningSimulation Game
Relative Motion in Two Dimensions

Students will explore how motion is perceived differently from various reference frames, particularly in two dimensions.

Case Study AnalysisProblem-Based Learning
Introduction to Forces and Newton's First Law

Students will define force and explore Newton's First Law of Motion, understanding inertia and equilibrium.

Think-Pair-ShareChalk Talk
Newton's Second Law: Force, Mass, and Acceleration

Students will apply Newton's Second Law to calculate net force, mass, and acceleration in various scenarios.

Inquiry CircleCollaborative Problem-Solving
Newton's Third Law: Action-Reaction Pairs

Students will explore Newton's Third Law, identifying action-reaction force pairs and understanding their implications.

Problem-Based LearningRole Play
Types of Forces: Weight, Normal Force, Tension

Students will identify and calculate common forces such as weight, normal force, and tension in various physical systems.

Concept MappingStations Rotation

02Dynamics and the Causes of Motion

13 topics·Weeks 10-18

An investigation into Newton's Laws of Motion and the forces that change the state of a system. Students apply free body diagrams to solve complex equilibrium and non equilibrium problems.

Friction: Static and Kinetic

Students will investigate the forces of static and kinetic friction, calculating coefficients and analyzing their effects on motion.

Inquiry CircleExperiential Learning
Applying Newton's Laws: Systems of Objects

Students will solve complex problems involving multiple objects connected by ropes or interacting through contact forces.

Collaborative Problem-SolvingDecision Matrix
Inclined Planes and Force Components

Students will analyze forces on inclined planes, resolving forces into components parallel and perpendicular to the surface.

Problem-Based LearningStations Rotation
Circular Motion: Centripetal Force

Extending dynamics to curved paths and the universal law of gravitation. Students model planetary orbits and centripetal forces in mechanical systems.

Case Study AnalysisSimulation Game
Universal Gravitation

Students will explore Newton's Law of Universal Gravitation, calculating gravitational forces between objects.

Inquiry CircleConcept Mapping
Orbital Mechanics and Satellite Motion

Students will apply gravitational principles to understand satellite motion, orbital velocity, and Kepler's Laws.

Simulation GameProject-Based Learning
Work and Energy Transformations: Introduction to Work

Defining work as the mechanism of energy transfer and analyzing kinetic and potential energy within closed systems.

Inquiry CircleStations Rotation
Kinetic Energy and the Work-Energy Theorem

Students will define kinetic energy and apply the Work-Energy Theorem to relate work done to changes in kinetic energy.

Decision MatrixProblem-Based Learning
Potential Energy: Gravitational and Elastic

Students will explore gravitational potential energy and elastic potential energy, calculating energy stored in various systems.

Flipped ClassroomCollaborative Problem-Solving
Conservation of Mechanical Energy

Students will apply the principle of conservation of mechanical energy to solve problems involving energy transformations in ideal systems.

Simulation GameCase Study Analysis
Power and Efficiency

Students will define and calculate power, and analyze the efficiency of energy conversion processes.

Inquiry CircleDecision Matrix
Impulse and Momentum: Impulse-Momentum Theorem

Analyzing collisions and explosions through the lens of momentum conservation. Students distinguish between elastic and inelastic interactions.

Case Study AnalysisCollaborative Problem-Solving
Conservation of Momentum in Collisions

Students will apply the principle of conservation of momentum to analyze elastic and inelastic collisions in one and two dimensions.

Problem-Based LearningSimulation Game

03Conservation Laws in Mechanical Systems

11 topics·Weeks 19-27

Students explore the fundamental principles of energy and momentum conservation. This unit focuses on how energy is transferred and transformed during interactions.

Center of Mass and Collisions

Students will locate the center of mass for various systems and analyze its motion during collisions and explosions.

Experiential LearningInquiry Circle
Torque and Equilibrium

Students will define torque and apply the conditions for static equilibrium to analyze systems.

Problem-Based LearningStations Rotation
Simple Harmonic Motion: Springs and Pendulums

Students will analyze oscillatory motion, including the period and frequency of mass-spring systems and simple pendulums.

Inquiry CircleExperiential Learning
Wave Properties and Sound: Introduction to Waves

Examining the physics of periodic disturbances and the transmission of energy through mediums. Concepts include frequency, wavelength, and the Doppler effect.

Inquiry CircleSimulation Game
Wave Phenomena: Reflection, Refraction, Diffraction

Students will investigate the behavior of waves as they encounter boundaries and obstacles, including reflection, refraction, and diffraction.

Gallery WalkPeer Teaching
Interference and Standing Waves

Students will explore constructive and destructive interference, and the formation of standing waves in various media.

Simulation GameExperiential Learning
Sound Waves and the Doppler Effect

Students will investigate the properties of sound waves, including pitch, loudness, and the Doppler effect.

Case Study AnalysisInquiry Circle
Electromagnetic Spectrum

Students will explore the full range of the electromagnetic spectrum, understanding the properties and applications of different types of radiation.

Gallery WalkConcept Mapping
Geometric Optics: Reflection and Mirrors

Analyzing the behavior of light as it reflects and refracts at boundaries. Students construct ray diagrams for various optical instruments.

Peer TeachingProblem-Based Learning
Geometric Optics: Refraction and Lenses

Students will investigate the refraction of light and the formation of images by converging and diverging lenses.

Project-Based LearningSimulation Game
Optical Instruments

Students will analyze the principles behind common optical instruments like telescopes, microscopes, and cameras.

Museum ExhibitCase Study Analysis

04Waves, Light, and Optics

10 topics·Weeks 28-36

Investigating the behavior of mechanical and electromagnetic waves. Students explore resonance, interference, and the geometric optics of lenses and mirrors.

Electrostatics and Electric Fields: Electric Charge

Understanding the forces between stationary charges and the concept of electric potential. Students map field lines for various charge configurations.

Gallery WalkConcept Mapping
Coulomb's Law and Electric Force

Students will apply Coulomb's Law to calculate the electric force between point charges and analyze its vector nature.

Collaborative Problem-SolvingFlipped Classroom
Electric Fields and Field Lines

Students will define electric fields and construct electric field lines for various charge configurations.

Inquiry CircleSimulation Game
Electric Potential Energy and Electric Potential

Students will differentiate between electric potential energy and electric potential, calculating both for various charge arrangements.

Concept MappingCase Study Analysis
Circuit Analysis and Magnetism: Current and Resistance

Applying Ohm's Law and Kirchhoff's Rules to series and parallel circuits. Students also investigate the relationship between current and magnetic fields.

Inquiry CircleStations Rotation
Series and Parallel Circuits

Students will apply Ohm's Law and Kirchhoff's Rules to analyze series and parallel DC circuits.

Collaborative Problem-SolvingProject-Based Learning
Magnetic Fields and Forces

Students will explore the properties of magnetic fields and the forces exerted on moving charges and current-carrying wires.

Simulation GameGallery Walk
Electromagnetic Induction and Faraday's Law

Students will investigate electromagnetic induction, applying Faraday's Law to understand how changing magnetic flux generates EMF.

Case Study AnalysisInquiry Circle
Thermodynamics and Heat Engines: Temperature and Heat

Investigating internal energy, entropy, and the efficiency of thermal systems. Students analyze P-V diagrams for heat engine cycles.

Concept MappingStations Rotation
First Law of Thermodynamics and Energy Conservation

Students will explore the First Law of Thermodynamics, understanding energy conservation in thermal systems.

Socratic SeminarCase Study Analysis