Your smartphone is a veritable STEM laboratory in your pocket! Smartphones can support your teaching of algebra-based introductory STEM (primarily through physics and mathematical modeling) by making high-precision measurement tools available in contexts where lab equipment is scarce or cannot be taken outside of the classroom to capture data at home or “in the field.”

Teaching Physics with Smartphones

Recommended experience
Recommended experience
What you'll learn
Explore physical phenomena with your own smartphone’s sensors and understand how those sensors work.
Build graphical and mathematical representations of physical relationships from your smartphone’s measurements.
Carry out a smartphone modeling investigation and plan how to bring it to your own students
Details to know

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October 2026
15 assignments
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There are 9 modules in this course
In this first module, you will learn about the logistical and pedagogical benefits of using smartphone sensors for data collection when teaching physics. You will also install the Physics Toolbox Sensor Suite app on your device if you don’t already have it, and audit your smartphone’s capabilities. You will also confront the practical realities of student device access for doing smartphone physics. MATERIALS: To complete this module, you will need to have your smartphone and the permissions on your device to download the free app.
What's included
7 readings1 assignment5 discussion prompts1 plugin
7 readings•Total 55 minutes
- Welcome to the Course•2 minutes
- Course Materials and Structure•2 minutes
- Installing and Navigating Physics Toolbox•10 minutes
- A Tutorial, and Free versus Pro•5 minutes
- Navigating Device Restrictions•3 minutes
- Weighing the Benefits of Using Smartphones in Teaching and Learning•30 minutes
- Considerations for BYOD•3 minutes
1 assignment•Total 30 minutes
- Your Device Audit•30 minutes
5 discussion prompts•Total 90 minutes
- What Do You Already Do?•15 minutes
- What Do You Notice about the App?•15 minutes
- Reflecting on Smartphone Bans•30 minutes
- Your Rationale•15 minutes
- Access in Your Context•15 minutes
1 plugin•Total 5 minutes
- Pre-Survey•5 minutes
This module will now take you into the first of three pedagogical approaches, starting with sensor exploration. You will engage in scaffolded and open play with multiple sensors to understand what they measure, and promote ownership over the tool before it is put to work. You will also learn about how the sensors function at a basic level, learning the fundamentals of microelectromechanical sensors (MEMS). While it may not be necessary to understand how sensors work in order to use them to engage in science practices, most teachers and students find the information interesting and enlightening. MATERIALS: To complete this module, you will need to have your smartphone and a small magnet (any kind), and, optionally, a large air-tight bag for a challenge if your smartphone has a barometer.
What's included
14 readings5 assignments4 discussion prompts
14 readings•Total 148 minutes
- Physics Toolbox Play•30 minutes
- Thinking Beyond Classic Experiments in Physics•10 minutes
- What Smartphones Don’t Do Well•3 minutes
- How Smartphones “Sense” their Environment•5 minutes
- G-Force Meter - How a Smartphone Measures Acceleration•15 minutes
- G-Force Meter and Accelerometer: How It Works•20 minutes
- Gyroscope: How a Smartphone Measures Rotation•15 minutes
- Magnetometer: How a Smartphone Measures Magnetism•10 minutes
- Magnetometer: How It Works•10 minutes
- Sound Meter: How a Smartphone Measures (and Makes) Sound•5 minutes
- Sound Meter: Sensing Sound•5 minutes
- Light Meter: How a Smartphone Measures Light•5 minutes
- Light Meter: Measuring Light•5 minutes
- Other Modes & Sensors•10 minutes
5 assignments•Total 51 minutes
- Physics Toolbox Play•10 minutes
- STEM Professionals Use Sensors•30 minutes
- Comparing Kinematics Modes•5 minutes
- Sound Meter: Making Sound•4 minutes
- Light Meter: Measuring Light•2 minutes
4 discussion prompts•Total 60 minutes
- G-Force Meter and Accelerometer: How a Smartphone Measures Acceleration•15 minutes
- G-Force Meter: How It Works•15 minutes
- Magnetometer: How It Works•15 minutes
- Reflecting on MEMS•15 minutes
This module takes you from sensor exploration into the second of three pedagogical approaches, phenomenon exploration, before advancing finally to modeling. Across this and the next few modules, you will use your smartphone to observe and make sense of real physical events, beginning here with two everyday motions: walking toward and away from a wall, and jumping. You will work first as a learner, watching your own body generate a graph, and then step back as a teacher. Along the way you will meet the position-time graph difficulties that students reliably bring to kinematics, connect an acceleration trace to Newton's laws, and see how these experiences extend to elevators, playgrounds, and amusement park rides. MATERIALS: To complete this module, you will need to have your smartphone, a few meters of open floor and a wall or flat object that you will walk toward and away from, and a piece of paper and pencil for sketching some graphs. Optionally, you might want to try some experiments that require a wide bed or bedsheet, and access to an elevator or playground swing. Sample data will be provided if you do not have the optional materials.
What's included
11 readings3 assignments6 discussion prompts
11 readings•Total 200 minutes
- Measuring Motion: Measure Screen•10 minutes
- Measuring Motion: Chart Screen•5 minutes
- Matching a Motion Graph: Game Screen•50 minutes
- Student Challenges with Motion•40 minutes
- Understanding Acceleration Axes•10 minutes
- Collecting Jump Data•10 minutes
- Corresponding Motion to Acceleration•20 minutes
- Free Fall•5 minutes
- The Trampoline Assignment•20 minutes
- Students’ Attempts at Trampoline Graphs•25 minutes
- Expanding to Elevators, Playgrounds, and Amusement Parks•5 minutes
3 assignments•Total 25 minutes
- Synthesizing Your Understanding•10 minutes
- Corresponding Acceleration to Net Force•10 minutes
- Expanding to Elevators, Playgrounds, and Amusement Parks•5 minutes
6 discussion prompts•Total 100 minutes
- Your Best Attempt•15 minutes
- Reflecting on Your Own Classroom•15 minutes
- Understanding Acceleration Axes•15 minutes
- Annotating Your Trace•20 minutes
- Free Fall•15 minutes
- Your Three Graphs•20 minutes
This module continues your work with phenomenon exploration, transitioning from motion to sound and light. One thing changes here: until now your smartphone has been a detector, but in this module it also becomes a source, producing tones and colored light that you and your colleagues can combine. You will watch your own voice appear on an oscilloscope, compare three different displays of the same sound, add waves together to hear timbre change, generate beats with two phones at once, and then use the screen as a light source to build colors by addition and strip them away by reflection and absorption. Several of these activities need more than one device, so they double as a model for the group-based approach many classrooms will need. MATERIALS: To complete this module, you will need to have your smartphone and at least two others (borrowed from colleagues or friends) and paper and pencil for sketching waveforms. Optionally, you may want to try some experiences that require a sheet of white paper, a dark room (or large coat or thick blanket to block out light if you can’t get a dark room), colored candies or beads, and colored gummy or gelatin snacks.
What's included
8 readings1 assignment2 discussion prompts
8 readings•Total 130 minutes
- Exploring the Oscilloscope•10 minutes
- What Is the Oscilloscope Showing Waves Of?•10 minutes
- Modifying Sound Waves•10 minutes
- Comparing Acoustical Representations•10 minutes
- Adding Sound Waves•30 minutes
- Beats•20 minutes
- Color by Addition•20 minutes
- Color by Subtraction•20 minutes
1 assignment•Total 10 minutes
- Comparing Acoustical Representations•10 minutes
2 discussion prompts•Total 30 minutes
- Exploring the Oscilloscope•15 minutes
- Reflecting on Waves, Sound, & Light with Smartphones•15 minutes
This module closes out phenomenon exploration with a field you have no sense for at all. Nothing in the human body detects a magnetic field. And, unlike a stopwatch or a colored lamp, a magnetic field sensor is missing from most school laboratories. You will read the Earth's field at your own location and check it against a global map, work out which way it actually points. Additionally, if your device supports augmented reality, you will build a three-dimensional picture of the field around you and around a magnet. MATERIALS: To complete this module, you will need to have your smartphone (and, briefly, a second smartphone to take a photograph of your smartphone setup) and a magnet with clearly-defined poles (e.g., a ceramic or neodymium magnet; standard “flat” refrigerator magnets will not work).
What's included
5 readings3 assignments3 discussion prompts
5 readings•Total 135 minutes
- Sensing Fields•25 minutes
- Magna AR•30 minutes
- Tackling Misunderstandings in Magnetism: An Embodied Approach•30 minutes
- Global Perspectives•30 minutes
- Solar Perspectives•20 minutes
3 assignments•Total 18 minutes
- Sensing Fields•5 minutes
- Tackling Misunderstandings in Magnetism•10 minutes
- Global Perspectives•3 minutes
3 discussion prompts•Total 50 minutes
- Sensing Fields•15 minutes
- Captures of Your Field•20 minutes
- Reflecting on Magnetism with Smartphones•15 minutes
Already throughout this course, you have used multiple models, and you have engaged in quasi-modeling of physical phenomena by qualitatively exploring the relationships between variables in a system. In this module, you will learn about models and modeling as an underlying process to drive understanding through experimentation with smartphones, using fluid pressure as an example. MATERIALS: To complete this module, you will need to have your smartphone. Optionally, you may want to try an experiment that requires the use of a meter stick or measuring tape, tub or deep container, water, and a commercial waterproof phone case. Data for this experiment is provided should you not have the materials or not want to try the experiment with your own phone.
What's included
8 readings1 assignment5 discussion prompts
8 readings•Total 131 minutes
- Models and Modeling•5 minutes
- The Smartphone Barometer•15 minutes
- Modeling Pressure with Graphical and Mathematical Representations•45 minutes
- Measuring Water Pressure with Your Smartphone•3 minutes
- Modeling Air Pressure and Height•3 minutes
- Collecting Pressure and Height Data•30 minutes
- Understanding Regression, Slope, and Intercept•10 minutes
- Taking the Model Further•20 minutes
1 assignment•Total 10 minutes
- Synthesizing Your Understanding about Fluid Pressure Models•10 minutes
5 discussion prompts•Total 85 minutes
- Pressure and Height/Depth Relationships•15 minutes
- Modeling Pressure•20 minutes
- Predicting the Relationship between Air Pressure and Height•15 minutes
- Identifying the Graphical and Mathematical Representations of the Model•20 minutes
- Reflection on Modeling•15 minutes
Browse a set of modeling investigations you can carry out with a smartphone (simpler ones needing only a single sensor and a ruler, and more complex ones needing particular equipment or data export), and choose the one you will use later in Module 8. For each, you get the modeling objective, an empty data table, the setup, and the practical guidelines. While you won’t yet collect data, the goal is to find the investigation that fits your sensors, your materials, and the physics you teach. MATERIALS: To complete this module, you will need to have your smartphone. Optionally, you may want to try an experience that requires the use of a meter stick or measuring tape, a large open area for tossing an object, and medium-to-large, high contrast object for tossing (e.g., a tennis ball, basketball, football, etc.). You will also choose a physical principle to model, depending upon your available materials.
What's included
11 readings1 assignment2 discussion prompts
11 readings•Total 156 minutes
- An Overview of Exemplar Models•10 minutes
- Simpler Models•1 minute
- Sound Intensity•5 minutes
- Light Intensity•5 minutes
- Magnetic Field Intensity•5 minutes
- Modeling Free Fall with Video Analysis•45 minutes
- Modeling Gravity on an Incline•10 minutes
- Modeling a Pendulum Swing•10 minutes
- Modeling Centripetal Acceleration•10 minutes
- Modeling Speed of Sound with a Column of Air•10 minutes
- Smartphone Physics Resource Banks•45 minutes
1 assignment•Total 6 minutes
- Modeling Free Fall with Video Analysis•6 minutes
2 discussion prompts•Total 35 minutes
- Choosing Your Model•15 minutes
- Smartphone Physics Resource Banks•20 minutes
Having chosen (or come up with) a model in Module 7, you will now collect your own data, build a graph from it, describe the mathematical relationship you find, and reflect on what the experience would mean for your own students. Your portfolio, which includes the modeling objective, evidence of your data collection, a scatter plot, a description of the model, and a reflection, will go out for peer review, and you will review the work of others in turn. MATERIALS: To complete this module, you will need to have your smartphone and any materials required for the modeling experience you choose.
What's included
3 readings1 peer review
3 readings•Total 3 minutes
- Starting from Your Objective, Your Sensor, and Your Constraints•1 minute
- Portfolio Instructions•1 minute
- Instructions•1 minute
1 peer review•Total 240 minutes
- Modeling Physics with Your Smartphone•240 minutes
Course wrap-up, contribution, and certificate.
What's included
3 readings1 discussion prompt1 plugin
3 readings•Total 8 minutes
- Reflecting on the Three Pedagogical Approaches•2 minutes
- Going Further•5 minutes
- Get Your Certificate•1 minute
1 discussion prompt•Total 20 minutes
- Reflecting on the Three Pedagogical Approaches•20 minutes
1 plugin•Total 15 minutes
- Post-Survey•15 minutes
Instructor

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