Q.Monochromatic light of wavelength is incident from air on a water surface. What are the wavelength, frequency and speed of
Frequency is invariant across media boundaries because it is determined by the source. For reflected light, wavelength and speed remain unchanged (same medium). For refracted light, speed and wavelength both reduce by the factor of the refractive index (, ). Here, reflected: , , ; refracted: , , .
The single most important idea in this problem is frequency invariance. When light crosses from one medium to another, its frequency does not change. Why? Because frequency is set by the source — the oscillating charges in the light source emit a certain number of wave crests per second. When that wave enters a different medium, the crests cannot pile up or vanish at the boundary; they must arrive and depart at the same rate. So the frequency stays the same in air, water, or any transparent medium.
What does change is the speed of light, and consequently the wavelength. In a medium of refractive index , light travels slower: . Since , if is fixed and drops, must also drop by the same factor.
Let's apply this cleanly.
Given data:
- Wavelength in air (vacuum essentially):
- Speed of light in vacuum/air:
- Refractive index of water:
1. Find the frequency in air (which will be the same everywhere)
Frequency is the only quantity we can compute directly from the air values:
Do the division:
This frequency is the same for both reflected and refracted light.
You don't need to recalculate frequency for each part. Compute it once from the given wavelength in air — it's universal here.
2. (a) Reflected light
Reflection occurs at the air-water boundary, but the reflected ray stays in air. So the medium of propagation is unchanged.
- Speed:
- Frequency: (invariant)
- Wavelength:
No calculation needed — reflected light is still in air, so all wave parameters are identical to the incident wave.
A common mistake is to think reflected light somehow "slows down" because it hit water. It doesn't — reflection sends it back into the same medium. Only refraction changes the medium.
3. (b) Refracted light
The refracted ray enters water. Now the speed changes:
Compute:
Frequency remains .
The cleanest way to get the wavelength in water is directly from (since and is constant, exactly):
Dividing the already-rounded by the already-rounded gives — a small rounding artifact, not a different physical answer. Always use the exact relation for the final value: 443 nm.
For refraction at a boundary:
4. Summary table
| Quantity | Reflected (in air) | Refracted (in water) |
|---|---|---|
| Speed | ||
| Frequency | ||
| Wavelength |
Reflected light: speed , frequency , wavelength ; refracted light: speed , same frequency, wavelength .
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