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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 A solution has 10 g solute and total mass 200 g. If density is 1 g mL−1, what is the mass-volume percentage?

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02 What is the mass of solute in 300 mL of a 1.5 M solution if molar mass is 40 g mol−1?

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03 What is the mass of solute in 250 mL of a 0.8 M solution if molar mass is 98 g mol−1?

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04 A solution has 5.85 percent sodium chloride by mass. If density is taken as 1.0 g mL−1, what is its approximate molarity?

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05 A solution has mole fraction of solute 0.2. If moles of solute are 2, what are the moles of solvent?

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06 A solution is 5 percent by mass. If molar mass of solute is 50 g mol−1 and the solvent is water, what is the approximate molality?

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07 A 1 M glucose solution has density 1.06 g mL−1. What is its approximate molality?

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08 What is the approximate mass percent of sodium chloride in a 2 molal sodium chloride solution?

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09 What mass of anhydrous sodium carbonate is needed to prepare 500 mL of 0.2 M solution?

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10 A 20 percent by mass glucose solution has density 1.2 g mL⁻¹. If molar mass of glucose is 180 g mol⁻¹, what is its molarity?

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11 What is the approximate mass percentage of a 1 molal urea solution if molar mass of urea is 60 g mol⁻¹?

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12 A 10 percent by mass sodium chloride solution has density 1.07 g mL⁻¹. Molar mass of sodium chloride is 58.5 g mol⁻¹. What is its approximate molarity?

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13 What is the approximate mole fraction of glucose in a 0.2 molal glucose solution?

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14 A 250 mL solution contains 0.005 g solute. If density of the solution is 1 g mL−1, what is the concentration in ppm?

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15 50 mL of 5 mol L−1 acid is mixed with 100 mL of 2 mol L−1 acid. Assuming final volume is 150 mL, what is the final molarity?

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16 In what volume ratio should 1 mol L⁻¹ and 4 mol L⁻¹ solutions of the same solute be mixed to obtain a 2 mol L⁻¹ solution?

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17 A 30 percent by mass nitric acid solution has density 1.18 g mL−1. Molar mass of nitric acid is 63 g mol−1. What is its approximate molarity?

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18 What is the approximate mole ratio of ethanol to water in a 40 percent by mass ethanol solution? Molar mass of ethanol is 46 g mol−1.

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19 What is the approximate molality of a 40 percent by mass methanol solution? Molar mass of methanol is 32 g mol−1.

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20 200 mL of 0.1 mol L−1 solution and 300 mL of 0.3 mol L−1 solution of the same solute are mixed. What is the final molarity?

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21 20 mL is taken out from 100 mL of 0.5 mol L−1 solution and diluted again to 100 mL with water. What is the new molarity?

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22 100 mL of 0.5 mol L−1 solution is diluted to 500 mL. How many moles of solute are present in 50 mL of the final solution?

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23 How many moles of sodium chloride are present in 250 mL of 12 percent mass by volume sodium chloride solution? Molar mass is 58.5 g mol−1.

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24 In what volume ratio should 0.5 mol L−1 and 1.5 mol L−1 solutions of the same solute be mixed to obtain 1.0 mol L−1 solution?

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25 Why is molality better than molarity for temperature-related colligative properties?

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