Modern Physics unit test
A test on this unit alone, marked as a percentage and a letter grade — for the test your class is actually sitting, rather than for May. Answer everything, then submit once: seeing the answer to question 3 before attempting question 4 makes the final percentage meaningless.
Fission vs fusion
de Broglie wavelength
Energy level diagrams
Electron diffraction
Alpha, beta and gamma decay
Radioactive decay is random
Photoelectric effect
Half-life
Photon energy
Work function
Conservation in nuclear reactions
Why intensity does not eject electrons below threshold
Short answer 1. Define or explain: Mass-energy equivalence
3 ptsShort answer 2. Define or explain: Wave-particle duality
3 ptsShort answer 3. Define or explain: Binding energy per nucleon
3 ptsShort answer 4. Define or explain: Compton scattering
3 ptsFree response
10 ptsThis course has no free-response prompt tagged to this unit, so one from elsewhere in the course is used. It is still worth writing — the skill transfers.
An ideal 12 V battery is connected in series with R₁ = 4.0 Ω. That resistor feeds a parallel combination of R₂ = 6.0 Ω and R₃ = 3.0 Ω.
Calculate the equivalent resistance of the circuit and the current delivered by the battery.
Calculate the potential difference across the parallel combination and the current in each of R₂ and R₃.
Calculate the power dissipated in R₁ and verify that the total power dissipated equals the power delivered by the battery.
An initially uncharged 100 μF capacitor is now connected in parallel with R₃. Determine the current delivered by the battery immediately after the connection is made, and a long time later.
Calculate the final charge on the capacitor and the energy stored in it.