CUET UG Physics Booster Test 3-Refractive Index
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QUESTION 1 OF 10
When a beam of light encounters another transparent medium,
QUESTION 2 OF 10
Identify the incorrect statement about Snell's Law
QUESTION 3 OF 10
If n₃₂ is the refractive index of medium 3 with respect to medium 2, and n₃₁ is the refractive index of medium 3 with respect to medium 1. Thus, if a light ray passes through these three media consecutively, the relationship determining n₃₂ using n₃₁ and n₁₂ will be
QUESTION 4 OF 10
Choose the correct statements about optical and mass density
1. Optical density is the ratio of the speed of light in two media.
2. A medium with higher optical density may have a lower mass density.
3. The optical density of turpentine is higher than that of water.
4. Mass density of turpentine is higher than that of water.
QUESTION 5 OF 10
Identify the correct statement regarding refraction through a rectangular slab:
1. The angle of emergence equals the angle of incidence.
2. The ray undergoes lateral shift.
3. Refraction occurs twice at two interfaces.
4. The emergent ray deviates significantly in angle.
QUESTION 6 OF 10
When a ray of light passes through a parallel-sided slab,
QUESTION 7 OF 10
For viewing near the normal direction:
QUESTION 8 OF 10
If a tank is filled with water to a real depth of 13.3 cm and the refractive index of water is 1.33, what will be the apparent depth of the bottom for viewing near the normal direction?
QUESTION 9 OF 10
Match List I with List II for ray transitions from denser to rarer medium
| List I | List II |
|---|---|
| 1. Incident ray | a. Approaches the boundary between media |
| 2. Reflected ray | b. Bounces back into the first medium |
| 3. Refracted ray | c. Enters the second transparent medium |
| 4. Interface | d. The boundary where internal reflection occurs |
QUESTION 10 OF 10
Choose the correct statements about a ray transitioning from denser to rarer medium
1. The ray bends away from the normal.
2. The angle of refraction is larger than the angle of incidence.
3. As the incidence angle increases, the refraction angle reaches 90 degrees at the critical angle.
4. The maximum possible value for the refraction angle is 45 degrees.
Test Complete!
Answer Review
1 When a beam of light encounters another transparent medium,
�� At an interface, light generally splits into reflected and transmitted parts. �� Refraction changes direction for oblique incidence. �� Both reflection and refraction occur simultaneously.
When light strikes the boundary between two transparent media, a portion is reflected back into the first medium and the remaining portion enters the second medium. This is the basic phenomenon associated with refraction at an interface. Therefore Option A is correct.
- �� Option B → Complete transmission does not generally occur.
- �� Option C → Oblique rays usually change direction.
- �� Option D → Does not describe refraction at an interface.
Used
- Direct Concept Recall
Application: Recall what happens at the boundary between two media.
Final Logic: Light is partly reflected and partly transmitted.
"Interface = Reflect + Refract."
2 Identify the incorrect statement about Snell's Law
�� Snell's law gives a constant ratio. �� Refractive index depends on media. �� Incident ray, refracted ray, and normal are coplanar.
According to Snell's law, sin i / sin r = n21 For a given pair of media, this ratio remains constant and does not vary with angle of incidence. Therefore Option A is incorrect.
- �� Option B → Correct statement.
- �� Option C → Correct when (n21 > 1).
- �� Option D → First law of refraction.
Used
- Odd One Out
Application: Identify the statement contradicting Snell's law.
Final Logic: Ratio of sines is constant, not variable.
"Snell = Constant Sine Ratio."
3 If n₃₂ is the refractive index of medium 3 with respect to medium 2, and n₃₁ is the refractive index of medium 3 with respect to medium 1. Thus, if a light ray passes through these three media consecutively, the relationship determining n₃₂ using n₃₁ and n₁₂ will be
�� Relative refractive indices combine multiplicatively. �� Intermediate medium acts as a link. �� Standard index-conversion relation.
n32 = n31 × n12 This relation is obtained from the definition of relative refractive index. Hence Option A is correct.
- �� Option B → Incorrect relation.
- �� Option C → Indices are not added.
- �� Option D → Incorrect reciprocal form.
Used
- Direct Concept Recall
Application: Recall the relation between relative refractive indices.
Final Logic:
- n32 = n31 n12
"Chain Rule: Multiply Indices."
4 Choose the correct statements about optical and mass density
1. Optical density is the ratio of the speed of light in two media.
2. A medium with higher optical density may have a lower mass density.
3. The optical density of turpentine is higher than that of water.
4. Mass density of turpentine is higher than that of water.
�� Optical density is related to refractive index. �� Mass density and optical density are different. �� Turpentine is optically denser than water.
Statements 1, 2, and 3 are correct. Statement 4 is incorrect because the mass density of turpentine is lower than that of water.
- �� Option B → Includes incorrect Statement 4.
- �� Option A → Includes incorrect Statement 4.
- �� Option D → Includes incorrect Statement 4.
Used
- Elimination
Application: Compare optical density and mass density.
Final Logic: Higher optical density does not imply higher mass density.
"Optical ≠ Mass Density."
5 Identify the correct statement regarding refraction through a rectangular slab:
1. The angle of emergence equals the angle of incidence.
2. The ray undergoes lateral shift.
3. Refraction occurs twice at two interfaces.
4. The emergent ray deviates significantly in angle.
�� Refraction occurs at both faces. �� Emergent ray is parallel to incident ray. �� Lateral displacement occurs.
Statements 1, 2, and 3 are correct. The emergent ray remains parallel to the incident ray, so there is no angular deviation, although a lateral shift exists. Statement 4 is incorrect.
- �� Option A → Includes incorrect Statement 4.
- �� Option C → Includes incorrect Statement 4.
- �� Option D → Includes incorrect Statement 4.
Used
- Elimination
Application: Recall rectangular slab properties.
Final Logic: Parallel emergence with lateral shift.
"Shifted, Not Turned."
6 When a ray of light passes through a parallel-sided slab,
�� Emergent ray is parallel. �� Lateral shift occurs. �� No 90° deviation exists.
A parallel-sided slab produces lateral displacement of the ray while maintaining parallelism between incident and emergent rays. Hence Option A is correct.
- �� Option B → Ordinary slab does not disperse light completely.
- �� Option C → Oblique incidence produces lateral shift.
- �� Option D → No such deviation occurs.
Used
- Direct Concept Recall
Application: Recall the effect of a glass slab.
Final Logic: Parallel emergence causes lateral displacement.
"Parallel Out, Shifted Sideways."
7 For viewing near the normal direction:
�� Apparent depth is less than real depth. �� Formula applies near the normal. �� Water tank bottoms appear raised.
Apparent Depth = Real Depth / μ Hence Option D is correct.
- �� Option B → Incorrect formula.
- �� Option C → Real depth = μ × Apparent depth.
- �� Option A → Real depth is greater.
Used
- Direct Concept Recall
Application: Recall apparent-depth formula.
Final Logic: Refractive index divides the real depth.
"Depth Divides by μ."
8 If a tank is filled with water to a real depth of 13.3 cm and the refractive index of water is 1.33, what will be the apparent depth of the bottom for viewing near the normal direction?
�� Use apparent-depth formula. �� Divide real depth by refractive index. �� Apparent depth is smaller.
Apparent Depth = Real Depth / μ13.3 / 1.33= 10.0 cm Hence Option A is correct.
- �� Option B → Greater than real depth.
- �� Option C → Incorrect calculation.
- �� Option D → Unrealistically small.
Used
- Substitution
Application: Apply the apparent-depth formula.
Final Logic:
- 13.3 / 1.33 = 10
"Apparent = Real ÷ μ."
9 Match List I with List II for ray transitions from denser to rarer medium
| List I | List II |
|---|---|
| 1. Incident ray | a. Approaches the boundary between media |
| 2. Reflected ray | b. Bounces back into the first medium |
| 3. Refracted ray | c. Enters the second transparent medium |
| 4. Interface | d. The boundary where internal reflection occurs |
�� Incident ray approaches boundary. �� Reflected ray returns. �� Refracted ray enters second medium.
1 → a: Incident ray approaches boundary. 2 → b: Reflected ray bounces back. 3 → c: Refracted ray enters second medium. 4 → d: Interface is the boundary. Hence: 1-a, 2-b, 3-c, 4-d
- �� Option B → Incorrect matching.
- �� Option C → Incorrect matching.
- �� Option D → Incorrect matching.
Used
- Option Grouping
Application: Match ray definitions first.
Final Logic: Each ray is matched to its physical behavior.
"Incident-In, Reflected-Back, Refracted-Across."
10 Choose the correct statements about a ray transitioning from denser to rarer medium
1. The ray bends away from the normal.
2. The angle of refraction is larger than the angle of incidence.
3. As the incidence angle increases, the refraction angle reaches 90 degrees at the critical angle.
4. The maximum possible value for the refraction angle is 45 degrees.
�� Denser to rarer means bending away. �� Refraction angle increases faster. �� At critical angle r = 90°
Statements 1, 2, and 3 are correct. At the critical angle, r = 90° Therefore, Statement 4 is incorrect because the maximum refraction angle is 90°, not 45°.
- �� Option B → Includes incorrect Statement 4.
- �� Option C → Includes incorrect Statement 4.
- �� Option A → Includes incorrect Statement 4.
Used
- Elimination
Application: Use the definition of critical angle.
Final Logic: Maximum refraction angle is 90°.
"Critical Angle → r = 90°."
