What is refraction of light?
Every question in this chapter, answered and explained — step-by-step solutions drawn live from the chapter library across 7 question sections.
What is refraction of light?
Define refractive index.
State Snell's law.
What is a critical angle?
What is total internal reflection?
What is the critical angle of glass?
What is dispersion of light?
Name the seven colours of the visible spectrum in order.
Which colour of light bends the least, and which bends the most, in a prism?
What is a lens?
Define the power of a lens.
What is the near point of a normal eye?
What is the far point of a normal eye?
What is myopia?
What is hypermetropia?
What is a cataract?
What is night blindness?
What is an optical fibre?
Write the laws of refraction of light.
Write two conditions necessary for total internal reflection of light.
Why do stars twinkle?
Why is a diamond seen to sparkle?
What is the role of total internal reflection in fibre optic internet?
What is the cause of dispersion of light?
What is accommodation of the eye?
Why does an object under water appear to be at a lesser depth than its real depth?
Write two uses of optical fibres in the medical field.
Between glass and water, glass is considered a denser medium and water is a rarer medium.
When a coin is placed in a glass containing water, it appears to rise a bit.
When letters written on paper are observed from the top of a glass slab, the letters appear to be slightly raised.
Stars twinkle.
The sun appears on the horizon about two minutes before the actual sunrise.
A diamond appears to shine, but a piece of glass cut to the same shape does not shine.
Sunlight is refracted (dispersed) when it is passed through a prism.
A convex lens converges light rays.
A concave lens diverges the rays of light.
Deficiency of vitamin A in the body is one of the main causes of night blindness.
Colour blindness occurs when the cone cells of the retina stop functioning.
Reflection of Light and Total Internal Reflection of Light
| Reflection of Light | Total Internal Reflection of Light |
|---|---|
| Occurs at the boundary of any two media, from either medium. | Occurs only when light travels from a denser to a rarer medium. |
| Only part of the light is reflected; the rest is refracted/transmitted. | All (100%) of the light is reflected back into the denser medium. |
| Can occur at any angle of incidence. | Occurs only when the angle of incidence exceeds the critical angle. |
Concave Lens and Convex Lens
| Concave Lens | Convex Lens |
|---|---|
| Thinner at the middle than at the edges. | Thicker at the middle than at the edges. |
| Diverges light rays (diverging lens). | Converges light rays (converging lens). |
| Always forms a virtual, erect, diminished image. | Forms real or virtual images depending on object position. |
| Has negative power (in dioptres). | Has positive power (in dioptres). |
Near Point of the Eye and Far Point of the Eye
| Near Point | Far Point |
|---|---|
| The nearest distance at which the eye sees objects clearly. | The farthest distance at which the eye sees objects clearly. |
| 25 cm for a normal eye. | Infinity for a normal eye. |
| Eye lens has maximum curvature (thickest, shortest focal length) here. | Eye lens has minimum curvature (thinnest, longest focal length) here. |
Shortsightedness (Myopia) and Long-sightedness (Hypermetropia)
| Shortsightedness (Myopia) | Long-sightedness (Hypermetropia) |
|---|---|
| Distant objects appear blurry; near objects are clear. | Nearby objects appear blurry; distant objects are clear. |
| Image forms in front of the retina. | Image forms behind the retina. |
| Corrected using a concave (diverging) lens. | Corrected using a convex (converging) lens. |
| Often caused by an elongated eyeball. | Often caused by a shortened eyeball, or occurs with old age. |
Colour Blindness and Night Blindness
| Colour Blindness | Night Blindness |
|---|---|
| Caused by a defect in the cone cells of the retina. | Caused by a problem with the rod cells of the retina. |
| Inability to distinguish certain colours (e.g., red-green). | Inability to see clearly in dim light or at night. |
| Mainly hereditary. | Mainly caused by vitamin A deficiency (also heredity, disease, or injury). |
State and explain the laws of refraction of light. Define refractive index.
This constant μ is called the refractive index of the pair of media. The refractive index of a medium (with respect to air/vacuum) is also equal to the ratio of the speed of light in air/vacuum (c) to the speed of light in that medium (v): μ = c/v. A higher refractive index means a lower speed of light in that medium, and a more optically denser medium.
What is total internal reflection? Explain its conditions with reference to the critical angle, and describe two of its applications.
Conditions: (1) light must travel from a denser to a rarer medium, and (2) the angle of incidence must exceed the critical angle for that pair of media.
Explain the formation of a rainbow with the help of a diagram.
Since millions of droplets across the sky each send their red, orange, etc. light to the observer's eye at slightly different angles, the overall effect is a circular arc of colours — appearing semicircular from the ground, but as a full circle when viewed from an aircraft or high altitude.
Describe the main parts of the human eye and their functions, and explain how accommodation of the eye works.
Accommodation is the process by which the ciliary muscles relax or contract to change the thickness (curvature) and hence the focal length of the eye lens, so that images of objects at different distances always focus exactly on the retina, since the distance between the lens and retina is fixed. When viewing distant objects, the ciliary muscles relax, making the lens thin with a longer focal length. When viewing nearby objects, the ciliary muscles contract, making the lens thick with a shorter focal length.
Explain the causes of myopia (shortsightedness) and describe how it is corrected.
Correction: A concave (diverging) lens of suitable focal length is placed in front of the eye. It diverges the incoming parallel rays slightly before they enter the eye, so that after refraction by the cornea and eye lens, the rays converge exactly on the retina, forming a clear image.
If the speeds of light in air and glass are 3 × 10⁸ m/s and 2 × 10⁸ m/s respectively, calculate the refractive index of glass with respect to air.
Given: speed of light in air (c) = 3 × 10⁸ m/s, speed of light in glass (v) = 2 × 10⁸ m/s
The refractive index of a diamond is 2.42. If the speed of light in air is 3 × 10⁸ m/s, calculate the speed of light in a diamond.
Given: μ = 2.42, c = 3 × 10⁸ m/s
When a ray of light falls on the surface of a plastic block, the angle made by the ray with the normal and the angle of refraction are found to be 45° and 33° respectively. Calculate the refractive index of the plastic.
Given: angle of incidence (i) = 45°, angle of refraction (r) = 33°
Calculate the power of a lens having a focal length of 25 cm.
Given: focal length (f) = 25 cm = 0.25 m
The power of the lens used in the spectacles worn by a student is −6D. Calculate the focal length of the lens. Also mention the type of lens.
Given: Power (P) = −6 D
Additional SEE Practice — Q6. The critical angle for a certain medium with respect to air is 30°. Calculate its refractive index. (Hint: at the critical angle, angle of refraction = 90°.)
Given: critical angle (C) = 30°, angle of refraction at critical angle = 90°
Draw ray diagrams showing the image formed by a convex lens when the object is: (i) beyond 2F, (ii) at 2F, (iii) between F and 2F, and (iv) between F and the optical centre.
The given ray diagram shows the dispersion of a light ray through a triangular prism, with colours labelled X (upper) and Y (lower) after the prism. Identify colours X and Y and explain why Y bends more than X.
Identify the type of defect of vision shown in a ray diagram where diverging rays from a nearby object (25 cm away, the normal near point) are focused behind the retina. Write two causes and describe its correction.
Causes: (1) The eyeball is too short, decreasing the distance between the lens and retina. (2) The ciliary muscles cannot contract enough, so the lens cannot become thick enough for near objects, increasing the focal length beyond what is needed.