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Question

Q.Explain the following :

(a) Sky appears blue.
(b) The Sun appears reddish at
(i) sunset,
(ii) sunrise.
CBSECBSE Class XII Board 2019Subjective· 2mImportance★★★★★est
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Both phenomena arise from Rayleigh scattering: shorter wavelengths (blue) scatter far more than longer ones (red). The blue sky comes from scattered sunlight; the red Sun at sunrise/sunset results from blue light being scattered away, leaving red to reach us directly.

The Physics Behind: Rayleigh Scattering

When sunlight travels through Earth's atmosphere, it encounters countless air molecules (mostly nitrogen and oxygen) and tiny particles. These obstacles are much smaller than the wavelength of visible light, which triggers a specific type of scattering called Rayleigh scattering.

The key insight is that scattering intensity depends strongly on wavelength. The mathematical relationship is:

Iscattered∝1λ4I_{\text{scattered}} \propto \frac{1}{\lambda^4}

This inverse fourth-power dependence means shorter wavelengths scatter dramatically more than longer ones. Blue light (λ≈450 nm\lambda \approx 450 \text{ nm}) scatters roughly (700/450)4≈5.6(700/450)^4 \approx 5.6 times more intensely than red light (λ≈700 nm\lambda \approx 700 \text{ nm}).

Scattering intensity∝1λ4\text{Scattering intensity} \propto \frac{1}{\lambda^4}

This single principle explains both the blue sky and the red Sun, but in complementary ways.


(a) Why the Sky Appears Blue

  1. Sunlight enters the atmosphere as white light, containing all visible wavelengths mixed together.

  2. Blue and violet components scatter most strongly because of their short wavelengths. As sunlight passes through air, these colors get redirected in all directions—including toward your eyes from every part of the sky.

  3. You see scattered light, not direct sunlight, when you look at the sky away from the Sun. Since blue scatters so much more than red, the scattered light reaching you is predominantly blue.

  4. Why not violet? Violet scatters even more than blue, but two factors favor blue: the Sun emits less violet light to begin with, and our eyes are far more sensitive to blue than violet (the peak sensitivity of human vision is around green-yellow, but blue receptors respond strongly while violet receptors are less efficient).

Note

The sky isn't uniformly blue everywhere. Near the horizon it appears paler or even whitish because light travels through more atmosphere, scattering multiple times and mixing wavelengths. Directly overhead, where the atmospheric path is shortest, the blue is deepest.


(b) Why the Sun Appears Reddish at Sunrise and Sunset

Both sunrise and sunset share the same optical geometry and thus the same explanation.

  1. Path length through the atmosphere increases dramatically. When the Sun is near the horizon, its light must travel through roughly 30–40 times more atmosphere than when it's directly overhead. Think of it as a long, shallow slice through the atmospheric layers.

  2. Blue light gets scattered out of your line of sight. As sunlight makes this extended journey, the shorter wavelengths (blue, violet) scatter away in all directions. By the time the light reaches your eyes, most of the blue has been removed from the direct beam.

  3. Red and orange wavelengths survive the journey. These longer wavelengths scatter weakly, so they pass through the thick atmosphere relatively unscathed. What remains of the direct sunlight is enriched in red, orange, and yellow—hence the Sun appears reddish. …

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