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Coulomb’s Law Basics

Science • 45 • 30 students • Created with AI following Aligned with Common Core State Standards

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Science
45
30 students
30 January 2026

Teaching Instructions

This is lesson 5 of 10 in the unit "Exploring Atomic Structures". Lesson Title: Coulomb's Law Basics Lesson Description: Students will learn about Coulomb's Law and its mathematical representation. They will explore how charge and distance affect the force between charged objects.

Unit: Exploring Atomic Structures

Lesson: 5 of 10

Duration: 45 minutes

Class Size: 30 Students

Grade: 10th Grade


NGSS Alignment

Disciplinary Core Ideas (DCI):

  • PS2.B: Types of Interactions — Electric forces can be attractive or repulsive, and their strength depends on the magnitude of electric charges and the distance between them.

Science and Engineering Practices (SEP):

  • Developing and Using Models
  • Analyzing and Interpreting Data

Crosscutting Concepts (CCC):

  • Cause and Effect
  • Scale, Proportion, and Quantity

Performance Expectations (PE):

  • HS-PS2-4: Use mathematical representations of Coulomb’s Law to describe and predict the force between charged objects.

Learning Objectives

By the end of this lesson, students will be able to:

  • Explain the relationship between electric force, charge magnitude, and distance as described by Coulomb’s Law.
  • Mathematically represent Coulomb’s Law: ( F = k \frac{|q_1 q_2|}{r^2} ).
  • Analyze how changes in charge or distance affect the magnitude and direction of electrostatic forces.
  • Apply Coulomb’s Law to solve basic problems involving charged particles.

Materials Needed

  • Whiteboard or smartboard
  • Student handouts with Coulomb’s Law formula and example problems
  • Small charged objects or simulations (e.g., virtual PhET simulation: “Charges and Fields”)
  • Calculators
  • Graph paper

Lesson Procedure

1. Engage (5 minutes)

  • Phenomenon Prompt: Show an image or animation of two charged particles either attracting or repelling each other. Ask: What causes charged objects to push or pull one another?
  • Solicit quick student ideas and connect their responses to electric forces.
  • Set purpose by introducing the term Coulomb’s Law, highlighting that today they will discover how physicists measure that force.

2. Explore (10 minutes)

  • Hands-on Activity: In pairs, students use small charged objects (e.g., balloons rubbed on hair and paper scraps) or an interactive simulation to observe attraction/repulsion at varying distances. Ask students to note qualitative changes in force as distance changes.
  • Students discuss with their partner: What happens to the force when distance doubles? What might happen if charge changes?

3. Explain (15 minutes)

  • Direct Instruction:

    • Introduce Coulomb’s Law formula:
      [ F = k \frac{|q_1 q_2|}{r^2} ] where:

      • (F) = magnitude of force (Newtons)
      • (k) = Coulomb’s constant (8.99 \times 10^9 , Nm^2/C^2)
      • (q_1, q_2) = magnitude of charges (Coulombs)
      • (r) = distance between charges (meters)
    • Explain the concepts of electric charge magnitude and distance and how they affect force strength (inverse square relationship).

  • Work through 2-3 example problems on the board demonstrating:

    • How to substitute values
    • How doubling distance reduces force by a factor of 4
    • How increasing charge increases force linearly

4. Elaborate (10 minutes)

  • Group Activity:
    • Students work in small groups on a worksheet with 3 problems requiring use of Coulomb’s Law.
    • At least one problem involves changing variables to predict the effect on force (e.g., “If the distance is halved, what happens to the force?”).
    • Encourage students to sketch forces as vectors, including direction (attraction vs repulsion).

5. Evaluate (5 minutes)

  • Exit Slip: Individually, students answer two questions on a small card:

    1. Write the formula for Coulomb’s Law and explain what happens to the force if the distance between two charges doubles.
    2. Calculate the force between two charges of ( +3 \times 10^{-6} C ) and ( -2 \times 10^{-6} C ) separated by 0.5 meters. (Provide constant on sheet if needed)
  • Collect exit slips for formative assessment.


Differentiation Strategies

  • For Students Needing Support: Use visual aids and simplified math steps; allow use of calculators; pair with peer tutors.
  • For Advanced Students: Provide real-world scenarios involving multiple charges or ask them to rearrange the formula to solve for (r) or (q).

Reflection and Extension

  • Ask students to reflect on how Coulomb's Law relates to atomic structure and forces between subatomic particles (foreshadowing upcoming lessons).
  • Extension at home or next class: Investigate how Coulomb’s Law underpins technologies, such as capacitors and electrostatic precipitators.

Teacher Notes

  • Emphasize the importance of units and signs of charges.
  • Prior lessons should have introduced electric charges and basic atomic structure for context.
  • Ensure students understand vector nature of forces beyond just magnitude.

This lesson plan carefully integrates hands-on investigations, conceptual understanding, mathematical application, and assessment while aligning strictly with NGSS expectations for HS-PS2-4. It balances engagement and rigor appropriate for 10th graders and paves the way for deeper quantum and electromagnetic studies.

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