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      Class 12 CHEMISTRY – JEE

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      • Chemistry
      • Class 12 CHEMISTRY – JEE
      CoursesClass 12ChemistryClass 12 CHEMISTRY – JEE
      • 1. Solid State
        11
        • Lecture1.1
          Crystalline & Amorphous Solid 50 min
        • Lecture1.2
          Law of Crystallography 01 hour
        • Lecture1.3
          Bravius lattice & Important Terms of solid state 48 min
        • Lecture1.4
          Type of Cubic crystal & Closest packed St. 01 hour
        • Lecture1.5
          Tetrahedral & Octahedral Void 38 min
        • Lecture1.6
          Type of Voids & Radius Ratio 44 min
        • Lecture1.7
          Type of ionic solid 59 min
        • Lecture1.8
          Defect in Solid 48 min
        • Lecture1.9
          Metallic Bonding 52 min
        • Lecture1.10
          Chapter Notes – Solid State
        • Lecture1.11
          NCERT Solutions – Solid State
      • 2. Solution and its C.P
        9
        • Lecture2.1
          Condition of solution formation, TD of Solution, Factors affecting solubility-Henary’s Law 55 min
        • Lecture2.2
          Colligative Properties, Raoult’s Law 49 min
        • Lecture2.3
          Relative lowering of V.P. & Problems 45 min
        • Lecture2.4
          Non ideal solution, Azeotropic Solution 46 min
        • Lecture2.5
          Elevation in B.P., Depression in F.P. 47 min
        • Lecture2.6
          Osmotic Pressure, Abnormal C.P. & Van’t Hoff Factor 59 min
        • Lecture2.7
          Solution – Ostwald Walker Exp. 13 min
        • Lecture2.8
          Chapter Notes – Solution and its C.P
        • Lecture2.9
          NCERT Solutions – Solution and its C.P
      • 3. Chemical Kinetics
        10
        • Lecture3.1
          Rate of reaction 37 min
        • Lecture3.2
          Differential Rate Law 38 min
        • Lecture3.3
          Integrated Rate Law 56 min
        • Lecture3.4
          Integrated Rate problems 53 min
        • Lecture3.5
          Pseudo order Reaction 40 min
        • Lecture3.6
          Reaction Mechanism 47 min
        • Lecture3.7
          Collision Model 34 min
        • Lecture3.8
          Arhenius Equation 34 min
        • Lecture3.9
          Chapter Notes – Chemical Kinetics
        • Lecture3.10
          NCERT Solutions – Chemical Kinetics
      • 4. Electrochemistry
        13
        • Lecture4.1
          Introduction & Galvanic cell 32 min
        • Lecture4.2
          Cell Notation & Cell Reaction 35 min
        • Lecture4.3
          Electrode & Cell Potential 38 min
        • Lecture4.4
          Electrochemical series 39 min
        • Lecture4.5
          The Nernst Equation 39 min
        • Lecture4.6
          Concentration cell, Battery, Corrosion 52 min
        • Lecture4.7
          Electrolysis 20 min
        • Lecture4.8
          Faraday Law 45 min
        • Lecture4.9
          Resistance & Conductance 40 min
        • Lecture4.10
          Molar & Eq. Conductance, Kohlraush’s Law 29 min
        • Lecture4.11
          Problems on Resistance & Conductance 23 min
        • Lecture4.12
          Chapter Notes – Electrochemistry
        • Lecture4.13
          NCERT Solutions – Electrochemistry
      • 5. Surface Chemistry
        11
        • Lecture5.1
          Introduction & Surface tension & surface energy 33 min
        • Lecture5.2
          Adsorption 47 min
        • Lecture5.3
          Factors affecting Adsorption 39 min
        • Lecture5.4
          Catalysis 34 min
        • Lecture5.5
          Type of Catalysis & Enzyme Catalysis 41 min
        • Lecture5.6
          Colloidal Solution 57 min
        • Lecture5.7
          Type of Colloidal Solution 43 min
        • Lecture5.8
          Properties of Colloidal Solution 50 min
        • Lecture5.9
          Protective Colloids 58 min
        • Lecture5.10
          Chapter Notes – Surface Chemistry
        • Lecture5.11
          NCERT Solutions – Surface Chemistry
      • 6. Alcohol & Ether
        8
        • Lecture6.1
          Preparation 35 min
        • Lecture6.2
          Physical Properties & Oxidation Of Alcohol 29 min
        • Lecture6.3
          Hydrates, Acetal, Ketal 38 min
        • Lecture6.4
          Tests Of Alcohol 47 min
        • Lecture6.5
          Ether Preparation & Its Properties 33 min
        • Lecture6.6
          Thiol & Thioether 16 min
        • Lecture6.7
          Chapter Notes – Alcohol & Ether
        • Lecture6.8
          NCERT Solutions – Alcohol & Ether
      • 7. Aldehyde & Ketone
        10
        • Lecture7.1
          Preparation 33 min
        • Lecture7.2
          Physical Properties, Beckmann Rearrangement, Witting Reaction 46 min
        • Lecture7.3
          Schmidt Reaction, Bayer Villegar Oxidation 22 min
        • Lecture7.4
          Aldol Condensation Reaction 40 min
        • Lecture7.5
          Cannizzaro Reaction 32 min
        • Lecture7.6
          Acyloin, Benzoin, Clasien, Perkin Condensation 28 min
        • Lecture7.7
          Reformasky Reaction, Tischenko Reaction 20 min
        • Lecture7.8
          Tests-8 40 min
        • Lecture7.9
          Chapter Notes – Aldehyde & Ketone
        • Lecture7.10
          NCERT Solutions – Aldehyde & Ketone
      • 8. Acid & derivatives
        4
        • Lecture8.1
          Preparation 31 min
        • Lecture8.2
          Chemical Reactions Of Acids 31 min
        • Lecture8.3
          Arndt Eistert, Curtius, Hvz, Hoffmann Reaction 19 min
        • Lecture8.4
          Acid Derivatives 38 min
      • 9. Nitrogen containing compounds
        4
        • Lecture9.1
          Alkyl Nitrites, Nitro Alkane 27 min
        • Lecture9.2
          Alkane Nitrile & Isonitrile 20 min
        • Lecture9.3
          Amine Preparation 24 min
        • Lecture9.4
          Properties Of Amines 13 min
      • 10. Aromatic Compounds
        7
        • Lecture10.1
          Benzene 41 min
        • Lecture10.2
          Aromatic Hydrocarbon 29 min
        • Lecture10.3
          Aryl Halides 18 min
        • Lecture10.4
          Phenol 40 min
        • Lecture10.5
          Aromatic Aldehyde 39 min
        • Lecture10.6
          Aniline 32 min
        • Lecture10.7
          Phenyl Diazonium Salts 37 min
      • 11. Biomolecules
        14
        • Lecture11.1
          Introduction & Types Of Carbohydrates 47 min
        • Lecture11.2
          D-glucose & D-fructose 50 min
        • Lecture11.3
          Reactions Of D-glucose & D-fructose 32 min
        • Lecture11.4
          Reactions Of D-glucose & D-fructose 23 min
        • Lecture11.5
          Sucrose, Maltose, Lactose 31 min
        • Lecture11.6
          Starch, Cellulose, Glycogen 27 min
        • Lecture11.7
          Reducing Sugar, Mutarotation, Osazone Formation 40 min
        • Lecture11.8
          Problems On Carbohydrates 41 min
        • Lecture11.9
          Amino Acids 48 min
        • Lecture11.10
          Peptides 47 min
        • Lecture11.11
          Proteins 18 min
        • Lecture11.12
          Enzyme & Vitamins 30 min
        • Lecture11.13
          Nucleic Acid 36 min
        • Lecture11.14
          Chapter Notes – Biomolecules
      • 12. Polymer Chemistry
        6
        • Lecture12.1
          Polymerisation Addition Reaction 32 min
        • Lecture12.2
          Coordination Addition, Condensation Reaction 24 min
        • Lecture12.3
          Division Of Polymer 41 min
        • Lecture12.4
          Examples Of Polymer 31 min
        • Lecture12.5
          Examples Of Polymer 31 min
        • Lecture12.6
          Chapter Notes – Polymer Chemistry
      • 13. Practical Organic Chemistry
        4
        • Lecture13.1
          Poc Qualitative Analysis 23 min
        • Lecture13.2
          Poc Qualitative Analysis 20 min
        • Lecture13.3
          Poc Quantitative Analysis 29 min
        • Lecture13.4
          Poc Quantitative Analysis 20 min
      • 14. P block elements II
        13
        • Lecture14.1
          VA – Elemental Properties of N family 51 min
        • Lecture14.2
          VA – Compounds of N family 43 min
        • Lecture14.3
          VA – N & Its compounds 45 min
        • Lecture14.4
          VA – Oxides & Oxyacids of Nitrogen 55 min
        • Lecture14.5
          VA – P & its compounds 31 min
        • Lecture14.6
          VA – Oxides & Oxyacids of P 31 min
        • Lecture14.7
          VIA 1 – Elemental Properties of O-Family 36 min
        • Lecture14.8
          VIA 2 – compounds of VIA elements 41 min
        • Lecture14.9
          VIA 3 – Oxygen & Ozone 47 min
        • Lecture14.10
          VIA 4 – Sulphur & oxides of Sulphur 37 min
        • Lecture14.11
          VIA 5 – Sulphuric Acid 25 min
        • Lecture14.12
          Chapter Notes – P block elements
        • Lecture14.13
          NCERT Solutions – P block elements
      • 15. P block elements III
        5
        • Lecture15.1
          VIIA 1 – elemental properties of Halogen 40 min
        • Lecture15.2
          VIIA 2 – Compounds of Halogen 49 min
        • Lecture15.3
          VIIA 3 – Chlorine & its Compounds 41 min
        • Lecture15.4
          VIIIA 1 – Properties of Noble Gas 34 min
        • Lecture15.5
          VIIIA 2 – Compounds of Noble Gas 34 min
      • 16. D block metals
        8
        • Lecture16.1
          D block – Elemental Properties 55 min
        • Lecture16.2
          Elemental Properties 01 hour
        • Lecture16.3
          Elemental Properties 53 min
        • Lecture16.4
          KMnO4 & K2Cr2O7 47 min
        • Lecture16.5
          Problems 40 min
        • Lecture16.6
          Problems 20 min
        • Lecture16.7
          Chapter Notes – The d-and f-Block Elements
        • Lecture16.8
          NCERT Solutions – The d-and f-Block Elements
      • 17. F block metals
        3
        • Lecture17.1
          Lanthanoids 52 min
        • Lecture17.2
          Actinoids 48 min
        • Lecture17.3
          Problems 42 min
      • 18. Co-ordination compounds
        17
        • Lecture18.1
          Introduction of Complex Compound, Ligands 42 min
        • Lecture18.2
          Classification of Ligands, Denticity 35 min
        • Lecture18.3
          Nomenclature of Complex Compounds 46 min
        • Lecture18.4
          Nomenclature of Complex Compounds 2 40 min
        • Lecture18.5
          Bonding in Complex Compound, Primary & Secondary Valency 44 min
        • Lecture18.6
          Concept of EAN 29 min
        • Lecture18.7
          VBT in Complex Compounds 58 min
        • Lecture18.8
          Examples on VBT in complex compounds 31 min
        • Lecture18.9
          CFT in Complex Compounds 43 min
        • Lecture18.10
          CFT for Octahedral & Tetrahedral Complex 35 min
        • Lecture18.11
          Colour & Stability of Complex Compounds 28 min
        • Lecture18.12
          Structural Isomerism in Complex Compounds 49 min
        • Lecture18.13
          Geometrical Isomerism in Complex Compounds 43 min
        • Lecture18.14
          Optical Isomerism in Complex Compounds, use of Complex 01 hour
        • Lecture18.15
          Organometallic Compounds 29 min
        • Lecture18.16
          Chapter Notes – Co-ordination compounds
        • Lecture18.17
          NCERT Solutions – Co-ordination compounds
      • 19. Environmental Chemistry
        4
        • Lecture19.1
          Introduction & Air Pollution 35 min
        • Lecture19.2
          Air Pollution 20 min
        • Lecture19.3
          Water Pollution 23 min
        • Lecture19.4
          Soil Pollution, Prevention of Pollution 16 min

        NCERT Solutions – Solution and its C.P

        2.1. Define the term solution. How many types of solutions are formed? Write briefly about each type with an example.

        Answer

        Homogeneous mixtures of two or more than two components are known as solutions.

        There are three types of solutions.

        (i) Gaseous solution:

        The solution in which the solvent is a gas is called a gaseous solution. In these solutions, the solute may be liquid, solid, or gas. For example, a mixture of oxygen and nitrogen gas is a gaseous solution.

        (ii) Liquid solution:

        The solution in which the solvent is a liquid is known as a liquid solution. The solute in these solutions may be gas, liquid, or solid.

        For example, a solution of ethanol in water is a liquid solution.

        (iii) Solid solution:

        The solution in which the solvent is a solid is known as a solid solution. The solute may be gas, liquid or solid. For example, a solution of copper in gold is a solid solution.

        2.2. Give an example of solid solution in which the solute is a gas.

        Answer

        In case a solid solution is formed between two substances (one having very large particles and the other having very small particles), an interstitial solid solution will be formed. For example, a solution of hydrogen in palladium is a solid solution in which the solute is a gas.

        2.3. Define the following terms:

        (i) Mole fraction

        (ii) Molality

        (iii) Molarity

        (iv) Mass percentage.

        Answer

        (i) Mole fraction:

        The mole fraction of a component in a mixture is defined as the ratio of the number of moles of the component to the total number of moles of all the components in the mixture.

        i.e.,

        Mole fraction of a component 

        Mole fraction is denoted by ‘x’.

        If in a binary solution, the number of moles of the solute and the solvent are nA and nB respectively, then the mole fraction of the solute in the solution is given by,

        Similarly, the mole fraction of the solvent in the solution is given as:

        (ii) Molality

        Molality (m) is defined as the number of moles of the solute per kilogram of the solvent. It is expressed as:

        Molality (m)

        (iii) Molarity

        Molarity (M) is defined as the number of moles of the solute dissolved in one Litre of the solution.

        It is expressed as:

        Molarity (M)

        (iv) Mass percentage:

        The mass percentage of a component of a solution is defined as the mass of the solute in grams present in 100 g of the solution. It is expressed as:

        Mass % of a component 

        2.4. Concentrated nitric acid used in laboratory work is 68% nitric acid by mass in aqueous solution. What should be the molarity of such a sample of the acid if the density of the solution is 1.504 g mL−1?

        Answer

        Concentrated nitric acid used in laboratory work is 68% nitric acid by mass in an aqueous solution. This means that 68 g of nitric acid is dissolved in 100 g of the solution.

        Molar mass of nitric acid (HNO3) = 1 × 1 + 1 × 14 + 3 × 16 = 63 g mol−1

        Then, number of moles of HNO3 

        Given,

        Density of solution = 1.504 g mL−1

        Volume of 100 g solution = 

        Molarity of solution 

         

        2.5. A solution of glucose in water is labelled as 10% w/w, what would be the molality and mole fraction of each component in the solution? If the density of solution is 1.2 g mL−1, then what shall be the molarity of the solution?

        Answer

        10% w/w solution of glucose in water means that 10 g of glucose in present in 100 g of the solution i.e., 10 g of glucose is present in (100 − 10) g = 90 g of water.

        Molar mass of glucose (C6H12O6) = 6 × 12 + 12 × 1 + 6 × 16 = 180 g mol−1

        Then, number of moles of glucose 

        = 0.056 mol

        Molality of solution = 0.62 m

        Number of moles of water 

        = 5 mol

        Mole fraction of glucose

        And, mole fraction of water 

        = 1 − 0.011

        = 0.989

        If the density of the solution is 1.2 g mL−1, then the volume of the 100 g solution can be given as:

        Molarity of the solution 

        = 0.67 M

        2.6. How many mL of 0.1 M HCl are required to react completely with 1 g mixture of Na2CO3 and NaHCO3 containing equimolar amounts of both?

        Answer

        Let the amount of Na2CO3 in the mixture be x g.

        Then, the amount of NaHCO3 in the mixture is (1 − x) g.

        Molar mass of Na2CO3 = 2 × 23 + 1 × 12 + 3 × 16

        = 106 g mol−1

         Number of moles Na2CO3 

        Molar mass of NaHCO3 = 1 × 23 + 1 × 1 × 12 + 3 × 16

        = 84 g mol−1

        Number of moles of NaHCO3 

        According to the question,

        ⇒ 84x = 106 − 106x

        ⇒ 190x = 106

        ⇒ x = 0.5579

        Therefore, number of moles of Na2CO3 

        = 0.0053 mol

        And, number of moles of NaHCO3 

        = 0.0053 mol

        HCl reacts with Na2CO3 and NaHCO3 according to the following equation.

        1 mol of Na2CO3 reacts with 2 mol of HCl.

        Therefore, 0.0053 mol of Na2CO3 reacts with 2 × 0.0053 mol = 0.0106 mol.

        Similarly, 1 mol of NaHCO3 reacts with 1 mol of HCl.

        Therefore, 0.0053 mol of NaHCO3 reacts with 0.0053 mol of HCl.

        Total moles of HCl required = (0.0106 + 0.0053) mol

        = 0.0159 mol

        In 0.1 M of HCl,

        0.1 mol of HCl is preset in 1000 mL of the solution.

        Therefore, 0.0159 mol of HCl is present in 

        = 159 mL of the solution

        Hence, 159 mL of 0.1 M of HCl is required to react completely with 1 g mixture of Na2CO3 and NaHCO3, containing equimolar amounts of both.

        2.7. A solution is obtained by mixing 300 g of 25% solution and 400 g of 40% solution by mass. Calculate the mass percentage of the resulting solution.

        Answer

        Total amount of solute present in the mixture is given by,

        = 75 + 160

        = 235 g

        Total amount of solution = 300 + 400 = 700 g

        Therefore, mass percentage (w/w) of the solute in the resulting solution, 

        = 33.57%

        And, mass percentage (w/w) of the solvent in the resulting solution,

        = (100 − 33.57)%

        = 66.43%

        2.8. An antifreeze solution is prepared from 222.6 g of ethylene glycol (C2H6O2) and 200 g of water. Calculate the molality of the solution. If the density of the solution is 1.072 g mL−1, then what shall be the molarity of the solution?

        Answer

        Molar mass of ethylene glycol= 2 × 12 + 6 × 1 + 2 ×16

        = 62 gmol−1

        Number of moles of ethylene glycol 

        = 3.59 mol

        Therefore, molality of the solution 

        = 17.95 m

        Total mass of the solution = (222.6 + 200) g

        = 422.6 g

        Given,

        Density of the solution = 1.072 g mL−1

        Volume of the solution 

        = 394.22 mL

        = 0.3942 × 10−3 L

         Molarity of the solution 

        = 9.11 M

        2.9. A sample of drinking water was found to be severely contaminated with chloroform (CHCl3) supposed to be a carcinogen. The level of contamination was 15 ppm (by mass):

        (i) express this in percent by mass

        (ii) determine the molality of chloroform in the water sample.

        Answer

        (i) 15 ppm (by mass) means 15 parts per million (106) of the solution.

        Therefore, percent by mass 

        = 1.5 × 10−3 %

        (ii) Molar mass of chloroform (CHCl3) = 1 × 12 + 1 × 1 + 3 × 35.5

        = 119.5 g mol−1

        Now, according to the question,

        15 g of chloroform is present in 106 g of the solution.

        i.e., 15 g of chloroform is present in (106 − 15) ≈ 106 g of water.

        Molality of the solution

        = 1.26 × 10−4 m

        2.10. What role does the molecular interaction play in a solution of alcohol and water?

        Answer

        In pure alcohol and water, the molecules are held tightly by a strong hydrogen bonding. The interaction between the molecules of alcohol and water is weaker than alcohol−alcohol and water−water interactions. As a result, when alcohol and water are mixed, the intermolecular interactions become weaker and the molecules can easily escape. This increases the vapour pressure of the solution, which in turn lowers the boiling point of the resulting solution.

        2.11. Why do gases always tend to be less soluble in liquids as the temperature is raised?

        Answer

        Solubility of gases in liquids decreases with an increase in temperature. This is because dissolution of gases in liquids is an exothermic process.

        Therefore, when the temperature is increased, heat is supplied and the equilibrium shifts backwards, thereby decreasing the solubility of gases.

        2.12. State Henry’s law and mention some important applications?

        Answer

        Henry’s law states that partial pressure of a gas in the vapour phase is proportional to the mole fraction of the gas in the solution. If p is the partial pressure of the gas in the vapour phase and x is the mole fraction of the gas, then Henry’s law can be expressed as:

        p = KH x

        Where,

        KH is Henry’s law constant

        Some important applications of Henry’s law are mentioned below.

        (i) Bottles are sealed under high pressure to increase the solubility of CO2 in soft drinks and soda water.

        (ii) Henry’s law states that the solubility of gases increases with an increase in pressure. Therefore, when a scuba diver dives deep into the sea, the increased sea pressure causes the nitrogen present in air to dissolve in his blood in great amounts. As a result, when he comes back to the surface, the solubility of nitrogen again decreases and the dissolved gas is released, leading to the formation of nitrogen bubbles in the blood. This results in the blockage of capillaries and leads to a medical condition known as ‘bends’ or ‘decompression sickness’.

        Hence, the oxygen tanks used by scuba divers are filled with air and diluted with helium to avoid bends.

        (iii) The concentration of oxygen is low in the blood and tissues of people living at high altitudes such as climbers. This is because at high altitudes, partial pressure of oxygen is less than that at ground level. Low-blood oxygen causes climbers to become weak and disables them from thinking clearly. These are symptoms of anoxia.

        2.13. The partial pressure of ethane over a solution containing 6.56 × 10−3 g of ethane is 1 bar. If the solution contains 5.00 × 10−2 g of ethane, then what shall be the partial pressure of the gas?

        Answer

        Molar mass of ethane (C2H6) = 2 × 12 + 6 × 1

        = 30 g mol−1

        Number of moles present in 6.56 × 10−3 g of ethane

        = 2.187 × 10−4 mol

        Let the number of moles of the solvent be x.

        According to Henry’s law,

        p = KHx

        Number of moles present in 5.00 × 10−2 g of ethane 

        = 1.67 × 10−3 mol

        According to Henry’s law,

        p = KHx

        = 7.636 bar

        Hence, partial pressure of the gas shall be 7.636 bar.

        2.14. What is meant by positive and negative deviations from Raoult’s law and how is the sign of ΔsolH related to positive and negative deviations from Raoult’s law?

        Answer

        According to Raoult’s law, the partial vapour pressure of each volatile component in any solution is directly proportional to its mole fraction. The solutions which obey Raoult’s law over the entire range of concentration are known as ideal solutions. The solutions that do not obey Raoult’s law (non-ideal solutions) have vapour pressures either higher or lower than that predicted by Raoult’s law. If the vapour pressure is higher, then the solution is said to exhibit positive deviation, and if it is lower, then the solution is said to exhibit negative deviation from Raoult’s law.

        Vapour pressure of a two-component solution showing positive deviation from Raoult’s law

        Vapour pressure of a two-component solution showing negative deviation from Raoult’s law

        In the case of an ideal solution, the enthalpy of the mixing of the pure components for forming the solution is zero.

        ΔsolH = 0

        In the case of solutions showing positive deviations, absorption of heat takes place.

        ∴ΔsolH = Positive

        In the case of solutions showing negative deviations, evolution of heat takes place.

        ∴ΔsolH = Negative

        2.15. An aqueous solution of 2% non-volatile solute exerts a pressure of 1.004 bar at the normal boiling point of the solvent. What is the molar mass of the solute?

        Answer

        Here,

        Vapour pressure of the solution at normal boiling point (p1) = 1.004 bar

        Vapour pressure of pure water at normal boiling point 

        Mass of solute, (w2) = 2 g

        Mass of solvent (water), (w1) = 98 g

        Molar mass of solvent (water), (M1) = 18 g mol−1

        According to Raoult’s law,

        = 41.35 g mol−1

        Hence, the molar mass of the solute is 41.35 g mol−1.

        2.16. Heptane and octane form an ideal solution. At 373 K, the vapour pressures of the two liquid components are 105.2 kPa and 46.8 kPa respectively. What will be the vapour pressure of a mixture of 26.0 g of heptane and 35 g of octane?

        Answer

        Vapour pressure of heptane 

        Vapour pressure of octane = 46.8 kPa

        We know that,

        Molar mass of heptane (C7H16) = 7 × 12 + 16 × 1

        = 100 g mol−1

        Number of moles of heptane 

        = 0.26 mol

        Molar mass of octane (C8H18) = 8 × 12 + 18 × 1

        = 114 g mol−1

        Number of moles of octane

        = 0.31 mol

        Mole fraction of heptane,

        = 0.456

        And, mole fraction of octane, x2 = 1 − 0.456

        = 0.544

        Now, partial pressure of heptane, 

        = 0.456 × 105.2

        = 47.97 kPa

        Partial pressure of octane, 

        = 0.544 × 46.8

        = 25.46 kPa

        Hence, vapour pressure of solution, ptotal = p1 + p2

        = 47.97 + 25.46

        = 73.43 kPa

        2.17. The vapour pressure of water is 12.3 kPa at 300 K. Calculate vapour pressure of 1 molal solution of a non-volatile solute in it.

        Answer

        1 molal solution means 1 mol of the solute is present in 1000 g of the solvent (water).

        Molar mass of water = 18 g mol−1

         Number of moles present in 1000 g of water 

        = 55.56 mol

        Therefore, mole fraction of the solute in the solution is

        .

        It is given that,

        Vapour pressure of water, = 12.3 kPa

        Applying the relation, 

        ⇒ 12.3 − p1 = 0.2177

        ⇒ p1 = 12.0823

        = 12.08 kPa (approximately)

        Hence, the vapour pressure of the solution is 12.08 kPa.

        2.18. Calculate the mass of a non-volatile solute (molar mass 40 g mol−1) which should be dissolved in 114 g octane to reduce its vapour pressure to 80%.

        Answer

        Let the vapour pressure of pure octane be

        Then, the vapour pressure of the octane after dissolving the non-volatile solute is 

        Molar mass of solute, M2 = 40 g mol−1

        Mass of octane, w1 = 114 g

        Molar mass of octane, (C8H18), M1 = 8 × 12 + 18 × 1

        = 114 g mol−1

        Applying the relation,

        Hence, the required mass of the solute is 8 g.

        2.19. A solution containing 30 g of non-volatile solute exactly in 90 g of water has a

        vapour pressure of 2.8 kPa at 298 K. Further, 18 g of water is then added to

        the solution and the new vapour pressure becomes 2.9 kPa at 298 K. Calculate:

        1. molar mass of the solute
        2. vapour pressure of water at 298 K.

        Answer

        (i) Let, the molar mass of the solute be M g mol−1

        Now, the no. of moles of solvent (water), 

        And, the no. of moles of solute, 

        Applying the relation:

        After the addition of 18 g of water:

        Again, applying the relation:

        Dividing equation (i) by (ii), we have:

        Therefore, the molar mass of the solute is 23 g mol−1.

        (ii) Putting the value of ‘M’ in equation (i), we have:

        Hence, the vapour pressure of water at 298 K is 3.53 kPa.

        2.20. A 5% solution (by mass) of cane sugar in water has freezing point of 271 K. Calculate the freezing point of 5% glucose in water if freezing point of pure water is 273.15 K.

        Answer

        Here, ΔTf = (273.15 − 271) K

        = 2.15 K

        Molar mass of sugar (C12H22O11) = 12 × 12 + 22 × 1 + 11 × 16

        = 342 g mol−1

        5% solution (by mass) of cane sugar in water means 5 g of cane sugar is present in (100 − 5)g = 95 g of water.

        Now, number of moles of cane sugar

        = 0.0146 mol

        Therefore, molality of the solution, 

        = 0.1537 mol kg−1

        Applying the relation,

        ΔTf = Kf × m

        = 13.99 K kg mol−1

        Molar of glucose (C6H12O6) = 6 × 12 + 12 × 1 + 6 × 16

        = 180 g mol−1

        5% glucose in water means 5 g of glucose is present in (100 − 5) g = 95 g of water.

         Number of moles of glucose 

        = 0.0278 mol

        Therefore, molality of the solution, 

        = 0.2926 mol kg−1

        Applying the relation,

        ΔTf = Kf × m

        = 13.99 K kg mol−1 × 0.2926 mol kg−1

        = 4.09 K (approximately)

        Hence, the freezing point of 5% glucose solution is (273.15 − 4.09) K= 269.06 K.

        2.21. Two elements A and B form compounds having formula AB2 and AB4. When dissolved in 20 g of benzene (C6H6), 1 g of AB2 lowers the freezing point by 2.3 Kwhereas 1.0 g of AB4 lowers it by 1.3 K. The molar depression constant for benzene is 5.1 Kkg mol−1. Calculate atomic masses of A and B.

        Answer

        We know that,

        Then, 

        = 110.87 g mol−1

        = 196.15 g mol−1

        Now, we have the molar masses of AB2 and AB4 as 110.87 g mol−1 and 196.15 g mol−1 respectively.

        Let the atomic masses of A and B be x and y respectively.

        Now, we can write:

        Subtracting equation (i) from (ii), we have

        2y = 85.28

        ⇒ y = 42.64

        Putting the value of ‘y’ in equation (1), we have

        x + 2 × 42.64 = 110.87

        ⇒ x = 25.59

        Hence, the atomic masses of A and B are 25.59 u and 42.64 u respectively.

         

        2.22. At 300 K, 36 g of glucose present in a litre of its solution has an osmotic pressure of 4.98 bar. If the osmotic pressure of the solution is 1.52 bars at the same temperature, what would be its concentration?

        Answer

        Here,

        T = 300 K

        π = 1.52 bar

        R = 0.083 bar L K−1 mol−1

        Applying the relation,

        π = CRT

        = 0.061 mol

        Since the volume of the solution is 1 L, the concentration of the solution would be 0.061 M.

        2.23. Suggest the most important type of intermolecular attractive interaction in the following pairs.

        (i) n-hexane and n-octane

        (ii) I2 and CCl4

        (iii) NaClO4 and water

        (iv) methanol and acetone

        (v) acetonitrile (CH3CN) and acetone (C3H6O).

        Answer

        (i) Van der Wall’s forces of attraction.

        (ii) Van der Wall’s forces of attraction.

        (iii) Ion-diople interaction.

        (iv) Dipole-dipole interaction.

        (v) Dipole-dipole interaction.

        2.24. Based on solute-solvent interactions, arrange the following in order of increasing solubility in n-octane and explain. Cyclohexane, KCl, CH3OH, CH3CN.

        Answer

        n-octane is a non-polar solvent. Therefore, the solubility of a non-polar solute is more than that of a polar solute in the n-octane.

        The order of increasing polarity is:

        Cyclohexane < CH3CN < CH3OH < KCl

        Therefore, the order of increasing solubility is:

        KCl < CH3OH < CH3CN < Cyclohexane

        2.25. Amongst the following compounds, identify which are insoluble, partially soluble and highly soluble in water?

        (i) phenol (ii) toluene (iii) formic acid

        (iv) ethylene glycol (v) chloroform (vi) pentanol.

        Answer

        (i) Phenol (C6H5OH) has the polar group −OH and non-polar group −C6H5. Thus, phenol is partially soluble in water.

        (ii) Toluene (C6H5−CH3) has no polar groups. Thus, toluene is insoluble in water.

        (iii) Formic acid (HCOOH) has the polar group −OH and can form H-bond with water. Thus, formic acid is highly soluble in water.

        (iv) Ethylene glycol  has polar −OH group and can form H−bond. Thus, it is highly soluble in water.

        (v) Chloroform is insoluble in water.

        (vi) Pentanol (C5H11OH) has polar −OH group, but it also contains a very bulky non-polar ­­­−C5H11 group. Thus, pentanol is partially soluble in water.

        2.26. If the density of some lake water is 1.25 g mL−1 and contains 92 g of Na+ ions per kg of water, calculate the molality of Na+ ions in the lake.

        Answer

        Number of moles present in 92 g of Na+ ions =

        = 4 mol

        Therefore, molality of Na+ ions in the lake 

        = 4 m

        2.27. If the solubility product of CuS is 6 × 10−16, calculate the maximum molarity of CuS in aqueous solution.

        Answer

        Solubility product of CuS, Ksp = 6 × 10−16

        Let s be the solubility of CuS in mol L−1.

        Now, 

        = s × s

        = s2

        Then, we have, Ksp = 

        = 2.45 × 10−8 mol L−1

        Hence, the maximum molarity of CuS in an aqueous solution is 2.45 × 10−8 mol L−1.

        2.28. Calculate the mass percentage of aspirin (C9H8O4) in acetonitrile (CH3CN) when 6.5 g of C9H8O4 is dissolved in 450 g of CH3CN.

        Answer

        6.5 g of C9H8O4 is dissolved in 450 g of CH3CN.

        Then, total mass of the solution = (6.5 + 450) g

        = 456.5 g

        Therefore, mass percentage ofC9H8O4 

        = 1.424%

        2.29. Nalorphene (C19H21NO3), similar to morphine, is used to combat withdrawal

        symptoms in narcotic users. Dose of nalorphene generally given is 1.5 mg.

        Calculate the mass of 1.5 × 10−3m aqueous solution required for the above dose.

        Answer

        The molar mass of nalorphene  is given as:

        In 1.5 × 10−3m aqueous solution of nalorphene,

        1 kg (1000 g) of water contains 1.5 × 10−3 mol

        Therefore, total mass of the solution 

        This implies that the mass of the solution containing 0.4665 g of nalorphene is 1000.4665 g.

        Therefore, mass of the solution containing 1.5 mg of nalorphene is:

        Hence, the mass of aqueous solution required is 3.22 g.

        Note: There is a slight variation in this answer and the one given in the NCERT textbook.

        2.30. Calculate the amount of benzoic acid (C6H5COOH) required for preparing 250 mL of 0.15 M solution in methanol.

        Answer

        0.15 M solution of benzoic acid in methanol means,

        1000 mL of solution contains 0.15 mol of benzoic acid

        Therefore, 250 mL of solution contains =  mol of benzoic acid

        = 0.0375 mol of benzoic acid

        Molar mass of benzoic acid (C6H5COOH) = 7 × 12 + 6 × 1 + 2 × 16

        = 122 g mol−1

        Hence, required benzoic acid = 0.0375 mol × 122 g mol−1

        = 4.575 g

        2.31. The depression in freezing point of water observed for the same amount of acetic acid, trichloroacetic acid and trifluoroacetic acid increases in the order given above. Explain briefly.

        Answer

          

        Among H, Cl, and F, H is least electronegative while F is most electronegative. Then, F can withdraw electrons towards itself more than Cl and H. Thus, trifluoroacetic acid can easily lose H+ ions i.e., trifluoroacetic acid ionizes to the largest extent. Now, the more ions produced, the greater is the depression of the freezing point. Hence, the depression in the freezing point increases in the order:

        Acetic acid < trichloroacetic acid < trifluoroacetic acid

        2.32. Calculate the depression in the freezing point of water when 10 g of CH3CH2CHClCOOH is added to 250 g of water. Ka = 1.4 × 10−3, Kf = 1.86

        K kg mol−1.

        Answer

        Molar mass of 

        ∴No. of moles present in 10 g of 

        It is given that 10 g of is added to 250 g of water.

        ∴Molality of the solution, 

        Let α be the degree of dissociation of 

        undergoes dissociation according to the following equation:

        Since α is very small with respect to 1, 1 − α ≈ 1

        Now, 

        Again,

        Total moles of equilibrium = 1 − α + α + α

        = 1 + α

        Hence, the depression in the freezing point of water is given as:

        2.33.19.5 g of CH2FCOOH is dissolved in 500 g of water. The depression in the freezing point of water observed is 1.0°C. Calculate the van’t Hoff factor and dissociation constant of fluoroacetic acid.

        Answer

        It is given that:

        We know that:

        Therefore, observed molar mass of 

        The calculated molar mass of is:

        Therefore, van’t Hoff factor, 

        Let α be the degree of dissociation of 

        Now, the value of Ka is given as:

        Taking the volume of the solution as 500 mL, we have the concentration:

        Therefore, 

        2.34. Vapour pressure of water at 293 Kis 17.535 mm Hg. Calculate the vapour pressure of water at 293 Kwhen 25 g of glucose is dissolved in 450 g of water.

        Answer

        Vapour pressure of water, = 17.535 mm of Hg

        Mass of glucose, w2 = 25 g

        Mass of water, w1 = 450 g

        We know that,

        Molar mass of glucose (C6H12O6), M2 = 6 × 12 + 12 × 1 + 6 × 16

        = 180 g mol−1

        Molar mass of water, M1 = 18 g mol−1

        Then, number of moles of glucose, 

        = 0.139 mol

        And, number of moles of water, 

        = 25 mol

        We know that,

        ⇒ 17.535 − p1 = 0.097

        ⇒ p1 = 17.44 mm of Hg

        Hence, the vapour pressure of water is 17.44 mm of Hg.

        2.35. Henry’s law constant for the molality of methane in benzene at 298 Kis 4.27 × 105 mm Hg. Calculate the solubility of methane in benzene at 298 Kunder 760 mm Hg.

        Answer

        Here,

        p = 760 mm Hg

        kH = 4.27 × 105 mm Hg

        According to Henry’s law,

        p = kHx

        = 177.99 × 10−5

        = 178 × 10−5 (approximately)

        Hence, the mole fraction of methane in benzene is 178 × 10−5.

        2.36. 100 g of liquid A (molar mass 140 g mol−1) was dissolved in 1000 g of liquid B (molar mass 180 g mol−1). The vapour pressure of pure liquid B was found to be 500 torr. Calculate the vapour pressure of pure liquid A and its vapour pressure in the solution if the total vapour pressure of the solution is 475 Torr.

        Answer

        Number of moles of liquid A, 

        = 0.714 mol

        Number of moles of liquid B, 

        = 5.556 mol

        Then, mole fraction of A, 

        = 0.114

        And, mole fraction of B, xB = 1 − 0.114

        = 0.886

        Vapour pressure of pure liquid B, = 500 torr

        Therefore, vapour pressure of liquid B in the solution,

        = 500 × 0.886

        = 443 torr

        Total vapour pressure of the solution, ptotal = 475 torr

        Vapour pressure of liquid A in the solution,

        pA = ptotal − pB

        = 475 − 443

        = 32 torr

        Now,

        = 280.7 torr

        Hence, the vapour pressure of pure liquid A is 280.7 torr.

         

        2.37. Vapour pressure of pure acetone and chloroform at 328 K are 741.8 mm Hg and 632.8 mm Hg respectively. Assuming that they form ideal solution over the entire range of composition, plot ptotal’ pchloroform’ and pacetone as a function of xacetone. The experimental data observed for different compositions of mixture is.

        100 ×xacetone 0 11.8 23.4 36.0 50.8 58.2 64.5 72.1
        pacetone /mm Hg 0 54.9 110.1 202.4 322.7 405.9 454.1 521.1
        pchloroform/mm Hg 632.8 548.1 469.4 359.7 257.7 193.6 161.2 120.7

        Answer

        From the question, we have the following data

        100 ×xacetone 0 11.8 23.4 36.0 50.8 58.2 64.5 72.1
        pacetone /mm Hg 0 54.9 110.1 202.4 322.7 405.9 454.1 521.1
        pchloroform/mm Hg 632.8 548.1 469.4 359.7 257.7 193.6 161.2 120.7
        ptota(mm Hg) 632.8 603.0 579.5 562.1 580.4 599.5 615.3 641.8

        It can be observed from the graph that the plot for the ptotal of the solution curves downwards. Therefore, the solution shows negative deviation from the ideal behaviour.

        2.38. Benzene and toluene form ideal solution over the entire range of composition. The vapour pressure of pure benzene and toluene at 300 K are 50.71 mm Hg and 32.06 mm Hg respectively. Calculate the mole fraction of benzene in vapour phase if 80 g of benzene is mixed with 100 g of toluene.

        Answer

        Molar mass of benzene 

        Molar mass of toluene 

        Now, no. of moles present in 80 g of benzene 

        And, no. of moles present in 100 g of toluene 

        ∴Mole fraction of benzene, xb 

        And, mole fraction of toluene, 

        It is given that vapour pressure of pure benzene, 

        And, vapour pressure of pure toluene, 

        Therefore, partial vapour pressure of benzene,

        And, partial vapour pressure of toluene,

        Hence, mole fraction of benzene in vapour phase is given by:

        2.39. The air is a mixture of a number of gases. The major components are oxygen

        and nitrogen with approximate proportion of 20% is to 79% by volume at 298

        K. The water is in equilibrium with air at a pressure of 10 atm. At 298 Kif the

        Henry’s law constants for oxygen and nitrogen are 3.30 × 107 mm and 6.51 × 107 mm respectively, calculate the composition of these gases in water.

        Answer

        Percentage of oxygen (O2) in air = 20 %

        Percentage of nitrogen (N2) in air = 79%

        Also, it is given that water is in equilibrium with air at a total pressure of 10 atm, that is, (10 × 760) mm Hg = 7600 mm Hg

        Therefore,

        Partial pressure of oxygen, 

        = 1520 mm Hg

        Partial pressure of nitrogen, 

        = 6004 mmHg

        Now, according to Henry’s law:

        p = KH.x

        For oxygen:

        For nitrogen:

        Hence, the mole fractions of oxygen and nitrogen in water are 4.61 ×10−5and 9.22 × 10−5 respectively.

        2.40. Determine the amount of CaCl2 (i = 2.47) dissolved in 2.5 litre of water such that its osmotic pressure is 0.75 atm at 27°C.

        Answer

        We know that,

        Here,

        R = 0.0821 L atm K-1mol-1

        M = 1 × 40 + 2 × 35.5

        = 111g mol-1

        Therefore, w 

        = 3.42 g

        Hence, the required amount of CaCl2 is 3.42 g.

        2.41. Determine the osmotic pressure of a solution prepared by dissolving 25 mg of K2SO4 in 2 liter of water at 25° C, assuming that it is completely dissociated.

        Answer

        When K2SO4 is dissolved in water,  ions are produced.

        Total number of ions produced = 3

        i =3

        Given,

        w = 25 mg = 0.025 g

        V = 2 L

        T = 250C = (25 + 273) K = 298 K

        Also, we know that:

        R = 0.0821 L atm K-1mol-1

        M = (2 × 39) + (1 × 32) + (4 × 16) = 174 g mol-1

        Appling the following relation,

        Prev Chapter Notes – Solution and its C.P
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