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Subjects

Chemistry

2: Concentration Metrics

सांद्रता के माप

In this Class 12 Chemistry topic from Chapter 01: Solutions, students learn how the amount of solute is expressed quantitatively in a solution. It explains common concentration measures such as mass percentage, volume percentage, parts per million, molarity, molality, and mole fraction, along with the meaning of their units and symbols. Students also learn to select the appropriate measure and apply formulas to interpret or calculate solution composition accurately.

Practice questions

01 Which option correctly identifies the units of molarity and mole fraction?

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02 A solution contains 1 mole of solute and 9 moles of solvent. What is the mole fraction of the solvent?

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03 If the mole fraction of a solute is 0.05, how is the solute present relative to the total amount of the solution?

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04 While calculating molarity, into what quantity should a given mass of solute first be converted?

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05 What is the molarity of a solution prepared by dissolving 18 g of glucose in enough solvent to make 1 L of solution? The molar mass of glucose is 180 g mol⁻¹.

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06 A 1 L solution contains 40 g of sodium hydroxide (NaOH). If the molar mass of NaOH is 40 g mol⁻¹, what is its molarity?

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07 Which statement correctly describes a concentrated solution?

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08 Which statement correctly describes a dilute solution?

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09 A solution is prepared by using 10 mL of solute to make 50 mL of solution. What is the volume percentage of the solute?

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10 A solution contains 5 g of solute in a total volume of 250 mL. What is its mass-volume percentage?

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11 If 0.25 mol of solute is present in 250 mL of solution, what is the molarity of the solution?

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12 If 0.1 mol of solute is dissolved in 0.5 kg of solvent, what is the molality of the solution?

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13 Which concentration term is best understood as the ratio of the moles of one component to the total moles of all components in a solution?

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14 If the solute has a mass of 15 g and the solution has a mass of 150 g, what is the mass percentage of the solute?

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15 If 30 mL of solute is present in 150 mL of solution, what is the volume percentage of the solute?

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16 Which option gives the correct relation for mass-volume percentage?

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17 If moles of solute are doubled while volume remains the same, what happens to molarity?

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18 If the mass of solvent is doubled and the moles of solute remain the same, what happens to molality?

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19 If 4 g solute forms 200 g solution, what is the mass percentage?

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20 If 8 mL solute is used to make 400 mL solution, what is the volume percentage?

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21 In a school laboratory, what does writing 0.1 M solution mean?

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22 How many moles of solute are present in 2 L of a 0.5 M solution?

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23 How many moles of solute are present in 250 mL of a 2 M solution?

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24 How many moles of solute are present in 500 mL of a 0.2 M solution?

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25 How many moles of solute are needed in 1 kg solvent to make a 2 m solution?

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