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Subjects

Chemistry

3: Solubility

विलेयता

In this Class 12 Chemistry topic from Chapter 01: Solutions, students learn how much of a solute can dissolve in a given amount of solvent under specific conditions. The topic explains saturated, unsaturated and supersaturated solutions, along with the factors that affect solubility, such as the nature of solute and solvent, temperature and pressure. Students also explore why gases behave differently from solids in solutions and apply these ideas to interpret solubility data and related chemical situations.

Practice questions

01 Under which conditions is the aqueous solubility of a gas most likely to be lowest?

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02 If the solubility of a gas is 0.02 mole fraction and pressure is doubled, what is the ideal new mole fraction?

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03 A solid's solubility increases greatly with temperature. Which method can be useful for its purification?

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04 Why is the effect of pressure on solubility more visible for gases than for solids?

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05 If dissolution of a gas in a liquid releases heat, in which direction will the equilibrium shift when the temperature is increased?

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06 If partial pressure of a gas increases but temperature also increases greatly, what is a careful statement about gas solubility?

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07 At the same pressure and temperature, how will the solubility of a gas with a larger Henry’s law constant compare?

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08 Which precaution related to gas solubility under high pressure is important for divers at depth?

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09 If dissolution of a solid solute is endothermic, how does its solubility generally change with increase in temperature?

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10 If dissolution of a solid is exothermic, what trend may its solubility show on increasing temperature?

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11 If the solubility of a solid changes very little with temperature, which method may be less effective for obtaining pure crystals?

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12 Why is the choice of solvent important in crystallization?

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13 Why does a polar solute generally dissolve better in a polar solvent?

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14 Iodine dissolves better in a non-polar solvent such as carbon tetrachloride than in water. What is the reason?

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15 Which attraction helps an ionic solid dissolve in water?

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16 For an ionic substance to be more soluble in water, which balance should be favourable?

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17 Which statement correctly distinguishes solubility from the rate of dissolving?

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18 Why can a finely powdered solute dissolve faster without necessarily changing its final solubility?

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19 Why can a saturated solution become unsaturated when more solvent is added at the same temperature?

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20 What may happen if a saturated solution is evaporated without changing its temperature?

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21 A student says that increasing pressure greatly increases every type of solubility. Why is this statement incorrect?

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22 What is the advantage of expressing the solubility of a gas in a liquid as mole fraction?

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23 When solute–solvent attractions are sufficiently favourable compared with solute–solute attractions, what happens to the possibility of dissolving?

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24 Why can two liquids be completely miscible?

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25 What is the main reason water and ethanol mix well?

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