This MCQ module is based on: Prism Instruments
Prism Instruments
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Prism Instruments
9.6 Refraction Through a Prism
A prism is a triangular block of transparent material. Light entering through one of its two refracting faces leaves through the other, being bent twice towards the base. The angle between the two refracting faces is the angle of prism \(A\); the angle between the emergent ray and the original direction of the incident ray is the angle of deviation \(\delta\).
Minimum Deviation
As the angle of incidence varies, \(\delta\) first decreases, reaches a minimum \(\delta_m\), then increases. At this minimum, the ray inside the prism travels parallel to the base and the path is symmetric: \(i = e\) and \(r_1 = r_2 = A/2\). This gives the prism formula for refractive index:
9.7 Dispersion by a Prism
When white light passes through a prism it emerges as a band of seven colours — Violet, Indigo, Blue, Green, Yellow, Orange, Red (VIBGYOR). This splitting is called dispersion and arises because the refractive index of the glass depends on wavelength: shorter wavelengths (violet) experience a higher \(n\) and are bent more; longer wavelengths (red) experience a smaller \(n\) and are bent less.
9.8 Some Natural Phenomena Due to Refraction and Scattering
Rainbow
A rainbow is nature's own giant spectrum, produced when sunlight enters a spherical raindrop, undergoes refraction → internal reflection → refraction. The primary rainbow appears at ~42° from the anti-solar point with red on the outside and violet on the inside; the fainter secondary rainbow appears at ~51° with reversed colour order (two internal reflections).
Scattering of Light
When light encounters particles much smaller than its wavelength, it is scattered. Lord Rayleigh showed that the scattered intensity varies as
This inverse-fourth-power law explains:
- Blue sky: Blue light (\(\lambda \approx 450\) nm) scatters about 10 times more strongly than red (\(\lambda \approx 700\) nm) by air molecules, so the diffuse sky glow looks blue.
- Red sun at sunrise/sunset: At low elevations, sunlight traverses a much longer atmospheric path. Blue is scattered out along the way, so the direct beam that reaches us is dominated by the red-orange end.
- White clouds: Cloud droplets are much larger than the wavelength of visible light. All colours are scattered almost equally (Mie scattering), so clouds look white.
9.9 Optical Instruments
The Human Eye
The eye acts as a fixed camera with a variable-focus lens. Ciliary muscles alter the focal length of the eye-lens to focus objects at different distances — a process called accommodation. The near point (least distance of distinct vision) for a normal young adult is \(D = 25\) cm.
| Defect | Symptom | Correction |
|---|---|---|
| Myopia (short-sight) | Distant objects blurred; image forms in front of retina. | Concave (diverging) lens. |
| Hypermetropia (long-sight) | Near objects blurred; image forms behind retina. | Convex (converging) lens. |
| Presbyopia | Loss of accommodation in old age (both near and far). | Bifocal / progressive lenses. |
| Astigmatism | Cornea curvature unequal in different planes. | Cylindrical lens. |
Simple Microscope (Magnifying Glass)
A convex lens with the object placed within its focal length produces a virtual, erect, magnified image.
Compound Microscope
Two converging lenses: a short-focus objective (\(f_o\)) forms a real, inverted, magnified intermediate image, which is then magnified further by an eyepiece (\(f_e\)) acting as a simple magnifier.
where \(L\) is the distance between the objective's second focus and the eyepiece's first focus (the tube length).
Astronomical (Refracting) Telescope
Objective has a long focal length and large aperture, the eyepiece a short focal length. In normal adjustment (final image at infinity):
Reflecting Telescope (Cassegrain)
A large concave primary mirror replaces the objective lens. A small convex secondary mirror redirects the converging beam through a hole in the primary to the eyepiece. Advantages over refractors: no chromatic aberration, easier to support huge apertures, and cheaper to build large (most modern professional telescopes — Hubble, Palomar — are reflecting).
Worked Examples — Prism, Eye and Instruments
Example 1: Refractive index from minimum deviation
A prism of angle 60° produces a minimum deviation of 30°. Find its refractive index.
Example 2: Angular dispersion of a thin prism
A thin prism of angle 4° is made of crown glass with \(n_{\text{red}} = 1.513\) and \(n_{\text{violet}} = 1.532\). Find the angular dispersion.
Example 3: Correction of myopia
A myopic person cannot see objects beyond 80 cm clearly. What focal length lens will correct his vision to see distant objects?
Example 4: Correction of hypermetropia
A hypermetropic person has a near point at 75 cm. What lens will let him read at the normal near point of 25 cm?
Example 5: Compound microscope magnification
A compound microscope has \(f_o=1\) cm, \(f_e=2.5\) cm, tube length \(L=15\) cm. Final image at near point. Find magnification.
Example 6: Telescope magnification
A refracting telescope has \(f_o=150\) cm and \(f_e=5\) cm. Find the magnifying power in normal adjustment and the length of the tube.
Example 7: Simple magnifier
A convex lens of focal length 5 cm is used as a simple magnifier with the image at 25 cm. Find the magnification.
- Pour water into a shallow dish until it is half full.
- Rest a small plane mirror against the inside wall of the dish, tilted so its reflecting face is partly under water.
- Place the dish in bright sunlight and hold a white card about 30–50 cm above the mirror.
- Tilt and adjust the mirror angle until a spectrum appears on the card.
Interactive: Eye-Defect Simulator L3 Apply
Choose the defect and a far-point / near-point value. The tool returns the corrective lens focal length and power.
Competency-Based Questions
Q1. L1 Remember At minimum deviation in a prism, \(r_1\) and \(r_2\) satisfy:
Q2. L3 Apply Find the magnification of the compound microscope in the scenario. (3 marks)
Q3. L2 Understand Why does the sky look blue during the day but red at sunset? (3 marks)
Q4. L3 Apply A myopic person's far point is 2 m. Find the power of corrective lens. (2 marks)
Q5. L4 Analyse Why is the objective of a telescope made with large aperture and long focal length? (3 marks)
Assertion-Reason Questions
Assertion (A): The sky appears blue to an observer on Earth.
Reason (R): Rayleigh scattering cross-section is proportional to \(1/\lambda^4\).
Assertion (A): Reflecting telescopes are preferred over refracting ones for large apertures.
Reason (R): A mirror shows no chromatic aberration and can be supported from the back.
Assertion (A): A concave lens is used to correct myopia.
Reason (R): The myopic eye forms the image behind the retina.
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Board exam sample papers
Physics — CBSE Class XII Sample Paper 1 (2025-26)
Section A · Section B · Section C · Section D · Section E