E.3.4—Mass-energy equivalence
- Syllabus
- First assessment 2025
- Objective
- —
- Level
- HL
Use E=mc²
A change in rest mass corresponds to energy through E=mc2. In a nuclear reaction, compare the total mass before and after to find the mass converted into released or absorbed energy.
\Delta E=\Delta mc^2
Worked example — energy from a mass decrease
For Δm=2.0×10−12kg, ΔE=(2.0×10−12)(3.00×108)2=1.8×105J. A smaller total rest mass of the products means this energy is released.
Compare energy yields
Energy released per reaction is proportional to mass converted. Energy released per unit mass also depends on the converted fraction: divide the energy from one reaction by the mass of fuel involved.
Track the system
Mass–energy equivalence applies to the mass difference of the defined reaction system. Do not compare only the total mass of the reactants without accounting for products.
Common trap
Do not confuse a large energy per reaction with a large energy per unit mass. The question’s denominator determines the comparison.
Questions compare energy released per unit mass in fusion and fission or identify mass–energy equivalence as a paradigm shift.
Calculate / Identify
Calculate each released energy from the stated mass conversion, then divide by the relevant fuel mass before forming the ratio.
Comparing only converted mass without normalising by the stated mass of fuel.
Retrieve the nuclear structure
Isotopes differ in neutrons; mass defect becomes binding energy; the binding-energy curve explains why fusion and fission can release energy; and the strong force competes with electromagnetic repulsion.
Retrieve the decay model
Alpha, beta and gamma decays change A and Z differently. Radioactive decay is random but statistically predictable; use half-life, count-rate scaling and background correction carefully.