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Doppler Effect in Light — NEET Physics MCQs with Solutions

Free NEET Physics Doppler Effect in Light MCQs with step-by-step solutions (16 questions). Part of Wave Theory of Light. Practise online on Prepizo — no login needed.

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Questions with solutions

Q1 — Doppler Effect in Light · easy · theory
The Doppler effect in light is the apparent change in the _____ of light due to relative motion between the source and the observer.
A. Frequency (and wavelength)  ✓ Correct
B. Speed
C. Amplitude
D. Direction of polarisation
Solution: Relative motion between source and observer changes the observed frequency and wavelength of light — the Doppler effect.
Q2 — Doppler Effect in Light · easy · theory
When a light source moves away from an observer, the observed wavelength:
A. Stays the same
B. Decreases (blue shift)
C. Increases (red shift)  ✓ Correct
D. Becomes zero
Solution: A receding source produces a red shift — the observed wavelength increases (frequency decreases).
Q3 — Doppler Effect in Light · easy · theory
A blue shift in the spectrum of a star indicates that the star is:
A. Receding from the observer
B. Stationary
C. Rotating about its axis
D. Approaching the observer  ✓ Correct
Solution: A blue shift (decrease in wavelength) means the source is approaching, so light is shifted towards higher frequency.
Q4 — Doppler Effect in Light · medium · theory
For a source moving with radial speed v much smaller than c, the fractional change in wavelength is given approximately by:
A. $\dfrac{\Delta\lambda}{\lambda} = \dfrac{c}{v}$
B. $\dfrac{\Delta\lambda}{\lambda} = \dfrac{v^2}{c^2}$
C. $\dfrac{\Delta\lambda}{\lambda} = \dfrac{v}{c}$  ✓ Correct
D. $\dfrac{\Delta\lambda}{\lambda} = \dfrac{2v}{c}$
Solution: For v ≪ c, the Doppler shift is Δλ/λ ≈ v/c (with v the radial component of velocity).
Q5 — Doppler Effect in Light · medium · theory
Unlike the Doppler effect for sound, the Doppler effect for light depends only on:
A. The velocity of the observer alone
B. The velocity of the source alone
C. The velocity of the medium
D. The relative velocity of source and observer  ✓ Correct
Solution: Light needs no medium, so only the relative velocity between source and observer matters (there is no separate "medium" frame as with sound).
Q6 — Doppler Effect in Light · medium · theory
The radial speed of a receding star can be found from its red shift using:
A. $v = \dfrac{\Delta\lambda}{c\lambda}$
B. $v = \dfrac{c\lambda}{\Delta\lambda}$
C. $v = c\,\dfrac{\Delta\lambda}{\lambda}$  ✓ Correct
D. $v = c\,\Delta\lambda\,\lambda$
Solution: From Δλ/λ = v/c, the radial speed is v = c(Δλ/λ).
Q7 — Doppler Effect in Light · medium · numerical
A spectral line of wavelength 6000 Å from a star is observed to be shifted towards the red by 5 Å. The speed of recession of the star is (c = 3 × 10⁸ m/s):
A. $1.5 \times 10^{5}$ m/s
B. $2.5 \times 10^{4}$ m/s
C. $2.5 \times 10^{6}$ m/s
D. $2.5 \times 10^{5}$ m/s  ✓ Correct
Solution: v = c(Δλ/λ) = (3 × 10⁸)(5/6000) = 3 × 10⁸ × 8.33 × 10⁻⁴ = 2.5 × 10⁵ m/s.
Q8 — Doppler Effect in Light · medium · theory
The observation that the spectral lines of distant galaxies are red-shifted led to the conclusion that:
A. The galaxies are stationary
B. Light slows down over large distances
C. The universe is expanding  ✓ Correct
D. The galaxies are approaching us
Solution: The systematic red shift of distant galaxies (Hubble's observation) indicates they are receding — evidence that the universe is expanding.
Q9 — Doppler Effect in Light · medium · theory
One edge (limb) of the rotating Sun shows a slight blue shift while the opposite edge shows a red shift. This is because:
A. The two edges have different temperatures
B. One edge approaches while the other recedes due to the Sun's rotation  ✓ Correct
C. Light is polarised differently at the edges
D. The two edges emit different elements
Solution: As the Sun rotates, one limb moves towards us (blue shift) and the other moves away (red shift), allowing its rotational speed to be measured.
Q10 — Doppler Effect in Light · medium · numerical
A galaxy is receding at 3 × 10⁶ m/s. The fractional red shift Δλ/λ of its spectral lines is:
A. 0.001
B. 1.0
C. 0.1
D. 0.01  ✓ Correct
Solution: Δλ/λ = v/c = (3 × 10⁶)/(3 × 10⁸) = 0.01 (a 1% red shift).
Q11 — Doppler Effect in Light · medium · numerical
A spectral line of 5000 Å from a star shifts by +2.5 Å towards the red. The recession speed is (c = 3 × 10⁸ m/s):
A. 3 × 10⁵ m/s
B. 7.5 × 10⁴ m/s
C. 1.5 × 10⁵ m/s  ✓ Correct
D. 1.5 × 10⁶ m/s
Solution: v = c(Δλ/λ) = 3 × 10⁸ × 2.5/5000 = 1.5 × 10⁵ m/s.
Q12 — Doppler Effect in Light · medium · numerical
A galaxy recedes at 6 × 10⁶ m/s. Its fractional red shift Δλ/λ is (c = 3 × 10⁸ m/s):
A. 0.2
B. 0.002
C. 0.02  ✓ Correct
D. 2
Solution: Δλ/λ = v/c = 6 × 10⁶/3 × 10⁸ = 0.02.
Q13 — Doppler Effect in Light · medium · numerical
A 6000 Å line is observed at 6006 Å from a receding source. The speed of recession is (c = 3 × 10⁸ m/s):
A. 3 × 10⁵ m/s  ✓ Correct
B. 3 × 10⁶ m/s
C. 1 × 10⁵ m/s
D. 6 × 10⁵ m/s
Solution: Δλ = 6 Å; v = c(6/6000) = 3 × 10⁵ m/s.
Q14 — Doppler Effect in Light · medium · numerical
A star approaches at 1.5 × 10⁶ m/s. The fractional blue shift of a spectral line is (c = 3 × 10⁸ m/s):
A. 0.5
B. 0.005  ✓ Correct
C. 0.05
D. 0.0005
Solution: Δλ/λ = v/c = 1.5 × 10⁶/3 × 10⁸ = 0.005 (towards shorter wavelength).
Q15 — Doppler Effect in Light · medium · numerical
A 4000 Å line from a galaxy is red-shifted to 4004 Å. The recession speed is (c = 3 × 10⁸ m/s):
A. 4 × 10⁵ m/s
B. 3 × 10⁵ m/s  ✓ Correct
C. 1 × 10⁵ m/s
D. 3 × 10⁶ m/s
Solution: Δλ = 4 Å; v = c(4/4000) = 3 × 10⁵ m/s.
Q16 — Doppler Effect in Light · hard · numerical
For a source receding at 3 × 10⁷ m/s, the shift of a 5000 Å line is (c = 3 × 10⁸ m/s):
A. 5000 Å
B. 5 Å
C. 500 Å (red)  ✓ Correct
D. 50 Å
Solution: Δλ = λ(v/c) = 5000 × (3 × 10⁷/3 × 10⁸) = 5000 × 0.1 = 500 Å.