Suspensions and Colloids - Tyndall Effect - UNSOLVED PRACTICE SET
Chapter: Is Matter Around Us Pure | Topic: Suspensions and Colloids Tyndall Effect
SUSPENSIONS AND COLLOIDS - TYNDALL EFFECT - UNSOLVED PRACTICE SET
Topic: Suspensions and Colloids Tyndall Effect
Multiple Choice Questions
Q1. The Tyndall effect is observed when:
- Light passes through a true solution
- Light passes through a suspension
- Light is scattered by particles in a colloid
- Light is absorbed by a pure substance
Q2. Which of the following will NOT show the Tyndall effect?
- Milk
- Starch solution
- Salt solution
- Smoke
Q3. The size range of particles in a colloidal solution is:
- Less than 1 nm
- 1 nm to 100 nm
- 100 nm to 1000 nm
- More than 1000 nm
Q4. Fog is an example of:
- A suspension
- A colloid (liquid in gas)
- A true solution
- A pure substance
Q5. Which of the following is a characteristic of a suspension but NOT of a colloid?
- Particles scatter light
- Particles settle down on standing
- Particles cannot be seen with naked eye
- Particles can pass through filter paper
Q6. When a beam of light is passed through a colloidal solution, the path of the beam becomes visible. This phenomenon is called:
- Brownian motion
- Tyndall effect
- Dialysis
- Electrophoresis
Short Answer Questions
Q7. What is the Tyndall effect? Name two everyday examples where you can observe this effect.
Q8. Differentiate between a suspension and a colloid on the basis of: (i) particle size, and (ii) stability.
Q9. Your teacher shows you three beakers containing: (A) salt solution, (B) milk, and (C) muddy water. When a torchlight is passed through each, only beaker B shows a visible light path. Explain why.
Q10. Why do the particles of a suspension settle down when left undisturbed, while the particles of a colloid do not? Explain in terms of particle size and gravity.
Q11. What is Brownian motion? How is it related to colloidal particles?
Q12. Classify the following as true solution, colloid, or suspension: (i) Blood, (ii) Sugar in water, (iii) Chalk powder in water, (iv) Cheese. Give one reason for each classification.
Long Answer Questions
Q13. With the help of a diagram, explain the Tyndall effect. Describe an experiment to demonstrate the Tyndall effect using a torchlight, three beakers (containing salt solution, milk, and muddy water), and a dark room. What conclusions can you draw from your observations?
Q14. A student argues that since both suspensions and colloids scatter light, they are essentially the same. Do you agree? Present a detailed comparison of suspensions and colloids based on particle size, stability, filterability, and the Tyndall effect. Use a table for clarity.
Q15. "The Tyndall effect has both scientific and practical importance." Discuss this statement by explaining: (i) how the Tyndall effect helps distinguish between true solutions and colloids, (ii) its application in understanding atmospheric phenomena like the blue colour of the sky, and (iii) its use in detecting impurities in drinking water.
Numerical / Application-Based Problems
Q16. In a laboratory experiment, a student prepares three mixtures:
Mixture P: 2 g of starch in 100 mL water
Mixture Q: 2 g of sodium chloride in 100 mL water
Mixture R: 2 g of sand in 100 mL water
(a) Classify each mixture as true solution, colloid, or suspension.
(b) Which mixture(s) will show the Tyndall effect? Explain.
(c) If the student filters each mixture, which one will leave a residue on the filter paper?
(d) After leaving all three mixtures undisturbed for 2 hours, describe what you would observe in each beaker.
Q17. A science teacher demonstrates the Tyndall effect in the classroom using a laser pointer and various samples:
Sample A: Clean water
Sample B: Dilute milk solution
Sample C: Dilute sulphur colloid
Sample D: Salt solution
(a) Predict which samples will show the Tyndall effect and which will not.
(b) The teacher adds a few drops of dilute HCl to Sample C. The Tyndall effect disappears. Explain why this happens at the particle level.
(c) If the particle size in Sample B is approximately 50 nm, in which category of colloids does it fall?
(d) Calculate the approximate number of particles if the total mass of dispersed phase in 100 mL of Sample B is 0.5 g and each particle has a mass of 10โปยนโธ g.
Q18. In a city, the air quality is monitored using the Tyndall effect. On a foggy winter morning, the visibility drops to 50 metres.
(a) Is the fog a colloid or a suspension? Identify the dispersed phase and dispersion medium.
(b) Explain why visibility is reduced using the concept of the Tyndall effect.
(c) If the concentration of water droplets in the fog is 0.1 g per cubic metre of air, calculate the mass of water droplets in 500 cubic metres of foggy air.
(d) Suggest two measures that city authorities can take to reduce fog-related visibility problems.