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NCERT Solutions for Class 12 Chemistry Chapter 1 - Solutions

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NCERT Solutions Class 12 Chemistry Chapter-1 “Solutions” FREE PDF Download!

Embark on a journey through Class 12 Chemistry NCERT Solutions Chapter 1, crafted to serve as your guiding light. This chapter navigates through chemical principles, offering a detailed exploration of essential concepts. NCERT Solutions Class 12 Chemistry Chapter 1 FREE PDF download ensures accessibility to comprehensive resources, empowering students to unravel the complexities of chemistry with clarity and confidence. Class 12 chemistry NCERT solutions Chapter 1 Step-by-step explanations and strategic insights, our solutions pave the way for a thorough understanding to excel in their academic pursuits and beyond.

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Table of Content
1. NCERT Solutions Class 12 Chemistry Chapter-1 “Solutions” FREE PDF Download!
2. Quick Insights of “Solutions” Class 12 NCERT Solutions
3. Access NCERT Solutions for Class 12 Chemistry Chapter 1- Solutions
4. NCERT Exercise
5. Class 12 Chemistry NCERT Solutions Chapter 1- Quick Overview of Topics 
6. Benefits of Referring to Vedantu’s NCERT Solutions for Class 12 Chemistry
7. Important Links for Class 12 Chemistry Chapter 1 Solutions
8. NCERT Solutions Class 12 Chemistry | Chapter-wise Links
9. NCERT Solutions Class 12 Chemistry - Related Links
FAQs


For more clarity, you can check out the revised Class 12 Chemistry Syllabus and get started with Vedantu!


Quick Insights of “Solutions” Class 12 NCERT Solutions

  • NCERT Solutions for Class 12 Chemistry Chapter 1 will give you insights into the General Introduction: Types of Solutions and Expressing Concentration of Solutions

  • The section will give you crisp learnings on the Solubility and Vapour Pressure of the Liquid Solutions.

  • The understanding related to topics like Ideal and Non-ideal Solutions, Colligative Properties, and Determination of Molar Mass.

  • Using these solutions can help students analyse their level of preparation and understanding of concepts.

  • Chemistry class 12 NCERT solutions chapters 2 topics are included according to the revised academic year 2024-25 syllabus.

  • It also provides resources such as class notes, important concepts, and formulas exemplar solutions.

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Access NCERT Solutions for Class 12 Chemistry Chapter 1- Solutions

1. Calculate the mass percentage of benzene (${{C}_{6}}{{H}_{6}}$ ) and carbon tetrachloride ($CC{{l}_{4}}$ ) if 22 g of benzene is dissolved in 122 g of carbon tetrachloride.

Ans: Mass percentage is the ratio of the mass of the solute divided by the total mass of the solution multiplied by 100. 

$Mass\%=\dfrac{mas{{s}_{solute}}}{mas{{s}_{solution}}}\times 100$ 

Here, 

The mass percentage of both compounds is given as;

Mass percentage of ${{C}_{6}}{{H}_{6}}$= $\dfrac{mas{{s}_{{{C}_{6}}{{H}_{6}}}}}{mas{{s}_{{{C}_{6}}{{H}_{6}}}}+mas{{s}_{CC{{l}_{4}}}}}\times 100$ 

                                        = $\dfrac{22}{22+122}\times 100$ 

                                        = 15.28 %

Now, as the solution consists of only two components i.e., ${{C}_{6}}{{H}_{6}}$ and $CC{{l}_{4}}$.

Thus,

Mass percentage of $CC{{l}_{4}}$= 100 – 15.28

                                        = 84.72%

Therefore, the mass percentages of ${{C}_{6}}{{H}_{6}}$ and $CC{{l}_{4}}$ are 15.28% and 84.72% respectively.


2. Calculate the mole fraction of benzene in a solution containing 30% by mass in carbon tetrachloride.

Ans: Mole fraction is the ratio of moles of solute to the total moles of solution.

Mole fraction = $\dfrac{{{n}_{solute}}}{{{n}_{solution}}}$ 

Here, 

We have given a solution containing 30% by mass of benzene in carbon tetrachloride; which clearly states that 30 g of benzene is present in 100 g of solution.

Thus, carbon tetrachloride is 70 g in 100 g of solution.

We know that,

Molar mass of benzene = 78 g/mol

Molar mass of carbon tetrachloride = 154 g/mol

Thus,

Number of moles of benzene = $\dfrac{30}{78}=0.385mol$  

Number of moles of carbon tetrachloride = $\dfrac{70}{154}=0.455mol$ 

Now, 

Mole fraction of benzene = $\dfrac{{{n}_{{{C}_{6}}{{H}_{6}}}}}{{{n}_{{{C}_{6}}{{H}_{6}}}}+{{n}_{CC{{l}_{4}}}}}$ 

                                         = $\dfrac{0.385}{0.385+0.455}$ 

                                         = $\dfrac{0.385}{0.84}=0.458$ 

Therefore, the mole fraction of benzene is 0.458 in the solution.


3. Calculate the molarity of each of the following solutions:

  1. 30 g of $Co{{\left( N{{O}_{3}} \right)}_{2}}.6{{H}_{2}}O$  in 4.3 L of solution.

Ans: Molarity is the number of moles of solute per liter of solution.

Molarity = $\dfrac{{{n}_{solute}}}{{{V}_{solution}}}$ M

Here,

Molarity of 30 g of $Co{{\left( N{{O}_{3}} \right)}_{2}}.6{{H}_{2}}O$  in 4.3 L of      

the solution is given as;

Molar mass of $Co{{\left( N{{O}_{3}} \right)}_{2}}.6{{H}_{2}}O$ = 310.7 g/mol.

Number of moles = $\dfrac{30}{310.7}=0.0966$ 

Thus, molarity = $\dfrac{0.0966}{4.3}=0.022M$


  1. 30 mL of 0.5 M ${{H}_{2}}S{{O}_{4}}$  diluted to 500 ml.

Ans: Molarity of 30 mL of 0.5 M ${{H}_{2}}S{{O}_{4}}$  diluted to 500 ml.

1000 ml of 0.5 M ${{H}_{2}}S{{O}_{4}}$ contains 0.5 moles of ${{H}_{2}}S{{O}_{4}}$.

Thus,

30 ml of 0.5 M ${{H}_{2}}S{{O}_{4}}$ contains;

= $\dfrac{0.5}{1000}\times 30=0.015moles$ ${{H}_{2}}S{{O}_{4}}$.

Also, the volume of solution = 500 ml = 0.5 L.

Now,

Therefore the molarity = $\dfrac{0.015}{0.5}=0.03M$


4. Calculate the mass of urea ($N{{H}_{2}}CON{{H}_{2}}$) required in making 2.5 kg of 0.25 molal aqueous solution.

Ans: Molality is given as ratio of moles of solute per gm of mass of solvent.

Molality = $\dfrac{{{n}_{solute}}}{{{m}_{solvent}}}$ m

Here,

0.25 molal solution of urea states that 0.25 moles of urea is present in 1000 gm of solvent.

The molar mass of solute i.e., urea = 60 g/mol

Thus,

Mass of urea in the solution = $0.25\times 60=15g$ 

Total mass of solution = 1000 gm solvent + 15 gm of solute 

                                     = 1015 gm = 1.015 Kg

This states that, 

1.015 Kg solution has 15 gm urea.

Thus,

2.5 Kg solution will have;

$\dfrac{15}{1.015}\times 2.5=37g$ urea.

Therefore, the mass of urea required will be 37 g.


5. Calculate the

  1. The molality of KI if the density of 20% (mass/mass) aqueous KI is 1.202 g/ml.

Ans: Given that,

20% of aqueous KI solution has 20 gm of KI in 100 gm of solution.

Mass of water (solvent) = 100 – 20 = 80 gm.

The volume of solution is given as,

Volume = $\dfrac{mass}{density}=\dfrac{100}{1.202}=83.194ml$ 

Molar mass of KI = 166.0028 g/mol

Thus,

Number of moles of KI = $\dfrac{20}{166.0028}=0.120mol$ 

Molar mass of water = 18 g/mol

Thus,

Number of moles of water = $\dfrac{80}{18}=4.44mol$ 

The molality of KI if the density of 20% (mass/mass) aqueous KI is 1.202 $g/ml$;

Molality = $\dfrac{0.120}{0.08}=1.50m$


  1. The molarity of KI if the density of 20% (mass/mass) aqueous KI is 1.202 g/ml.

Ans: Molarity of KI if the density of 20% (mass/mass) aqueous KI is 1.202 $g/ml$.

Molarity = $\dfrac{0.120}{0.083194}=1.44M$


  1. Mole fraction of KI if the density of 20% (mass/mass) aqueous KI is 1.202 g/ml.

Ans: Mole fraction of KI if the density of 20% (mass/mass) aqueous KI is 1.202 $g/ml$.

Mole fraction = $\dfrac{0.120}{0.120+4.44}=0.0263$


6. ${{H}_{2}}S$ , a toxic gas with a rotten egg like smell, is used for the qualitative analysis. If the solubility of  ${{H}_{2}}S$  in water at STP is 0.195 m, calculate Henry’s law constant.

Ans: Molality (solubility) of ${{H}_{2}}S$in water = 0.195 m which states that,

0.195 moles of ${{H}_{2}}S$in 1Kg of water (1000 g).

Now,

Molar mass of water = 18 g/mol.

Number of moles of water = $\dfrac{1000}{18}=55.55mol$ 

Mole fraction of ${{H}_{2}}S$ is 

\[{{X}_{{{H}_{2}}S}}=\dfrac{0.195}{0.195+55.55}=0.00349\] 

Pressure at STP is given as 0.987 bar. Thus, applying Henry’s law we get;

\[{{P}_{{{H}_{2}}S}}={{K}_{H}}\times {{X}_{{{H}_{2}}S}}\] 

\[{{K}_{H}}=\dfrac{{{P}_{{{H}_{2}}S}}}{{{X}_{{{H}_{2}}S}}}=\dfrac{0.987}{0.00349}=282.80bar\] 

Therefore,  Henry’s constant will be 282.80 bar.


7. Henry’s law constant for $C{{O}_{2}}$  in water is $1.67\times {{10}^{8}}$  Pa at 298 K. Calculate the quantity of $C{{O}_{2}}$  in 500 ml of soda water when packed under 2.5 atm $C{{O}_{2}}$  pressure at 298 K.

Ans: Given that,

Henry’s law constant, ${{K}_{H}}=1.67\times {{10}^{8}}Pa$

Pressure, ${{P}_{C{{O}_{2}}}}=2.5atm=2.5\times 101325=253312.5Pa$ 

Now, by Henry’s law;

\[{{P}_{C{{O}_{2}}}}={{K}_{H}}\times {{X}_{C{{O}_{2}}}}\] 

\[{{X}_{C{{O}_{2}}}}=\dfrac{253312.5}{1.67\times {{10}^{8}}}=1.5168\times {{10}^{-3}}\] 

Now,

500 ml soda water is equivalent to 500 ml water which indirectly signifies 500 gm of the same.

Thus,

We know that, the molar mass of water = 18 g/mol

Number of moles of water = $\dfrac{500}{18}=27.78mol$ 

Number of moles of $C{{O}_{2}}$ is given as,

\[{{X}_{C{{O}_{2}}}}=\dfrac{{{n}_{C{{O}_{2}}}}}{{{n}_{C{{O}_{2}}}}+{{n}_{water}}}\] 

\[{{n}_{C{{O}_{2}}}}={{X}_{C{{O}_{2}}}}\left( {{n}_{C{{O}_{2}}}}+{{n}_{water}} \right)\]

\[{{n}_{C{{O}_{2}}}}=42.20\times {{10}^{-3}}mol\]

Mass of $C{{O}_{2}}$ is given as,

Molar mass of $C{{O}_{2}}$ = 44 g/mol.

Thus,

Mass = ${{n}_{C{{O}_{2}}}}\times 44=1.857gm$


8. The vapor pressure of pure liquids A and B are 450 and 700 mm Hg respectively, at 350 K. Find out the composition of the liquid mixture if the total vapor pressure is 600 mm Hg. Also find the composition of the vapor phase.

Ans: Vapor pressures of the given pure liquids are;

${{P}_{A}}^{0}=450mm$ Hg, 

${{P}_{B}}^{0}=700mm$ Hg and 

${{P}_{Total}}=600mm$ Hg 

By Raoult’s law;

\[{{P}_{Total}}={{P}_{A}}+{{P}_{B}}\] 

\[{{P}_{Total}}={{X}_{A}}{{P}_{A}}^{0}+{{X}_{B}}{{P}_{B}}^{0}={{X}_{A}}{{P}_{A}}^{0}+\left( 1-{{X}_{A}} \right){{P}_{B}}^{0}\]

\[{{P}_{Total}}={{P}_{B}}^{0}+\left( {{P}_{A}}^{0}-{{P}_{B}}^{0} \right){{X}_{A}}\] 

\[600 = 700 + (450-700){{X}_{A}}\]

\[\therefore {{X}_{A}}=0.4\] 

Thus,

\[{{X}_{B}}=1-0.4=0.6\] 

${{P}_{A}}={{X}_{A}}{{P}_{A}}^{0}=0.4\times 450=180mm$ Hg

${{P}_{B}}={{X}_{B}}{{P}_{B}}^{0}=0.6\times 700=420mm$ Hg 

Thus,

Mole fraction of A in vapor phase = $\dfrac{180}{180+420}=0.3$ 

Mole fraction of B in vapor phase = 1 – 0.3 = 0.7


9. The vapor pressure of pure water at 298 K is 23.8 mm Hg. 50 g of urea ($N{{H}_{2}}CON{{H}_{2}}$) is dissolved in 850 g of water. Calculate the vapor pressure of water for this solution and its relative lowering.

Ans: Given that,

Vapor pressure of pure water, ${{P}^{0}}$ = 23.8 mm Hg

Mass of urea, ${{W}_{2}}$ = 50 g

Molar mass of urea, ${{M}_{2}}$ = 60 g/mol

Mass of water, ${{W}_{1}}$ = 850 g

Molar mass of water, ${{M}_{1}}$ = 18 g/mol

By Raoult’s law;

\[\Delta P={{P}^{0}}-{{P}_{s}}={{X}_{2}}\times {{P}^{0}}\] 

\[\dfrac{{{P}^{0}}-{{P}_{s}}}{{{P}^{0}}}={{X}_{2}}=\dfrac{{{n}_{2}}}{{{n}_{1}}+{{n}_{2}}}=\dfrac{{}^{{{W}_{2}}}/{}_{{{M}_{2}}}}{{}^{{{W}_{1}}}/{}_{{{M}_{1}}}+{}^{{{W}_{2}}}/{}_{{{M}_{2}}}}\]

\[{{X}_{2}}=0.017\] 

Now, 

We have given that ${{P}^{0}}$ = 23.8 mm Hg;

$\dfrac{23.8-{{P}_{s}}}{23.8}=0.017$ 

Thus, V. P. of solution, ${{P}_{s}}$  = 23.4 mmHg.


10. The boiling point of water at 750 mm Hg is 99.63${}^\circ $ C. How much sucrose is to be added to 500 g of water such that it boils at 100${}^\circ $ C.

Ans: Given that,

Boiling point of water = 100${}^\circ $ C

Boiling point of water at 750 mm Hg = 99.63${}^\circ $ C

Elevation in boiling point, $\Delta {{T}_{b}}=100-99.63=0.37$ 

Ebullioscopic constant, ${{K}_{b}}=0.52$ 

Mass of water, ${{W}_{1}}$ = 500 g

Molar mass of water, ${{M}_{1}}$ = 18 g/mol

Molar mass of sucrose, ${{M}_{2}}$ = 342 g/mol

Mass of sucrose, ${{W}_{2}}=?$ 

The elevation in boiling pint is given as;

\[\Delta {{T}_{b}}={{K}_{b}}\times m\] 

\[\Delta {{T}_{b}}={{K}_{b}}\times \dfrac{{{n}_{2}}}{{{W}_{1}}}={{K}_{b}}\times \dfrac{{{W}_{2}}}{{{M}_{2}}}\times \dfrac{1000}{{{W}_{1}}}\] 

\[{{W}_{2}}=\dfrac{\Delta {{T}_{b}}\times {{M}_{2}}\times {{W}_{1}}}{{{W}_{2}}\times 1000}=121.67g\] 

$\therefore $ 121.67 g sucrose to be added in water such that it boils at 100${}^\circ $ C.


11. Calculate the mass of ascorbic acid (Vitamin C,${{C}_{6}}{{H}_{8}}{{O}_{6}}$ ) to be dissolved in 75 g of acetic acid to lower its melting point by 1.5${}^\circ $ C. ${{K}_{f}}=3.9Kg/mol$ .

Ans: Given that,

Lowering in freezing point, $\Delta {{T}_{f}}$  = 1.5${}^\circ $ C

Cryoscopic constant, ${{K}_{f}}=3.9Kg/mol$

Mass of acetic acid, ${{W}_{1}}$ = 75 g

Molar mass of acetic acid, ${{M}_{1}}$ = 60 g/mol

Molar mass of ascorbic acid, ${{M}_{2}}$ = 176 g/mol

Mass of ascorbic acid, ${{W}_{2}}=?$

The lowering in freezing point is given as;

 \[\Delta {{T}_{f}}={{K}_{f}}\times m\]

\[\Delta {{T}_{f}}={{K}_{f}}\times \dfrac{{{n}_{2}}}{{{W}_{1}}}={{K}_{f}}\times \dfrac{{{W}_{2}}}{{{M}_{2}}}\times \dfrac{1000}{{{W}_{1}}}\]

\[{{W}_{2}}=\dfrac{\Delta {{T}_{f}}\times {{M}_{2}}\times {{W}_{1}}}{{{K}_{f}}\times 1000}=5.077g\]

$\therefore $ Mass of ascorbic acid is 5.077 g.


12. Calculate the osmotic pressure in pascals exerted by a solution prepared by dissolving 1.0 g of polymer of molar mass 185,000 in 450 mL of water at 37${}^\circ $ C.

Ans: Given that,

Mass of polymer, W = 1 g

Molar mass of polymer, M = 185000 g/mol

Volume of water, V = 450 ml = 0.45 L

Temperature, T = 37${}^\circ $ C = 310 K

Gas constant, R = $8.314kPa.L.{{K}^{-1}}mo{{l}^{-1}}=8.314\times {{10}^{3}}Pa.L.{{K}^{-1}}mo{{l}^{-1}}$ 

Now, using the formula for osmotic pressure;

\[\pi =CRT=\dfrac{n}{V}RT=\dfrac{W}{M}\times \dfrac{1}{V}\times RT\] 

\[\pi =30.96Pa\] 

$\, therefore, $ Osmotic pressure is 30.96 Pa.


NCERT Exercise

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

Ans: A homogeneous mixture of two or more chemically non-reacting substances is called a solution. There are nine types of solution under the main 3 heads i.e., gaseous solution, liquid solution and solid solution.


Types of Solutions with examples-


Gas in Gas: Air i.e., the mixture of $O_2$ and $N_2$

Liquid in Gas: Water vapor.

Solid in Gas: Smoke, Camphor vapors in $N_2$ gas, etc.

Gas in Liquid: Aerated water, $O_2$ dissolved in water, etc.

Liquid in Liquid: Vinegar solution, etc.

Solid in Liquid: Glucose dissolved in water, saline water, etc.

Gas in Solid: Solution of hydrogen in platinum, etc.

The liquid in Solid: Amalgams eg. Mg-Hg.

Solid in Solid: Ornaments (Cu/Ag with Au).


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

Ans: It is said that gas is a solute in the solid solution i.e., gas–solid solution. Examples are solid carbon dioxide in fire extinguishers, solution of hydrogen in palladium, dissolved gases in underground minerals, and many more.


3. Define the following terms:

  1. Mole Fraction 

Ans:  Mole fraction is the ratio of moles of solute to the total moles of solution.

Mole fraction = $\dfrac{{{n}_{solute}}}{{{n}_{solution}}}$


  1. Molality

Ans: Molality is given as ratio of moles of solute per gm of mass of solvent.

Molality = $\dfrac{{{n}_{solute}}}{{{m}_{solvent}}}$ m

It is a better way of expressing the concentration of the solute because this does not change with the change in temperature as that of molarity (dependent on the volume of solution).


  1. Molarity

Ans: Molarity is the number of moles of solute per liter of solution.

Molarity = $\dfrac{{{n}_{solute}}}{{{V}_{solution}}}$ M


  1. Mass Percentage

Ans: Mass percentage is the ratio of the mass of solute divided by the total mass of the solution multiplied by 100. 

\[Mass percentage=\dfrac{mas{{s}_{solute}}}{mas{{s}_{solution}}}\times 100\]


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?

Ans: Given that,

We have 68% nitric acid by mass in an aqueous solution which means 68 g of nitric acid is present in 100 g of solution.

The molar mass of nitric acid = 63 g/mol

Number of moles of nitric acid = $\dfrac{68}{63}=1.079mol$ 

Also,

The density of the solution is given as 1.504 g/ml. Thus,

Volume = $\dfrac{mass}{density}=\dfrac{100}{1.504}=66.489ml$ 

Now,

Molarity is given as;

Thus,

Molarity = $\dfrac{1.079\times 1000}{66.489}=16.22M$


5. A solution of glucose in water is labeled as 10% w/w, that would be the molality and mole fraction of each component in the solution. If the density of the solution is 1.2 g/ml then what shall be the molarity of the solution?

Ans: We have given that,

10% w/w solution of glucose in water i.e., 10 g of glucose in 90 g of water.

Now, as we know;

Molar mass of glucose = 180 g/mol

Molar mass of water = 18 g/mol

Thus, 

Number of moles of glucose in the solution = $\dfrac{10}{180}=0.055mol$ 

Number of moles of water in the solution = $\dfrac{90}{18}=5mol$ 

Taking into consideration the above values;

Molality is given as – 

Molality = $\dfrac{0.055\times 1000}{90}=0.617m$ 

The mole fraction of each component can be given as – 

Mole fraction of glucose = $\dfrac{0.055}{0.055+5}=0.0108$ 

Mole fraction of water = 1 – 0.0108 = 0.9892

Again,

We have given, the density of the solution is 1.2 g/ml. Thus,

Volume = $\dfrac{mass}{density}=\dfrac{100}{1.2}=83.33ml$ 

Thus,

Molarity can be given as;

Molarity = $\dfrac{0.055\times 1000}{83.33}=0.66M$


6. How many ml of 0.1 M HCl are required to react completely with 1 g mixture of $N{{a}_{2}}C{{O}_{3}}$  and  $NaHC{{O}_{3}}$  containing equimolar amounts of both?

Ans: Let us consider that we have x g of $N{{a}_{2}}C{{O}_{3}}$in 1g mixture. Thus, we will have (1 - x) g of $NaHC{{O}_{3}}$in the same.

We know that, 

Molar mass of $N{{a}_{2}}C{{O}_{3}}$= 106 g/mol

Molar mass of $NaHC{{O}_{3}}$= 84 g/mol

Thus,

Number of moles of $N{{a}_{2}}C{{O}_{3}}$ in mixture = $\dfrac{x}{106}$ 

Number of moles of $NaHC{{O}_{3}}$in mixture = $\dfrac{\left( 1-x \right)}{84}$ 

Now, as we have given that they are equimolar; thus,

\[\dfrac{x}{106}=\dfrac{\left( 1-x \right)}{84}\] 

\[84x=106-106x\] 

\[\therefore x=0.557\] 

Hence, 

Number of moles of $N{{a}_{2}}C{{O}_{3}}$ in mixture = $\dfrac{0.557}{106}=0.00526$ 

Number of moles of $NaHC{{O}_{3}}$in mixture = $\dfrac{\left( 1-0.577 \right)}{84}=0.00503$ 

To calculate how many ml of 0.1 M HCl is required to react completely with 1 g mixture of $N{{a}_{2}}C{{O}_{3}}$  and  $NaHC{{O}_{3}}$we need to analyze reactions for both;

\[N{{a}_{2}}C{{O}_{3}}+2HCl\to 2NaCl+{{H}_{2}}O+C{{O}_{2}}\] 

Here, each mole of $N{{a}_{2}}C{{O}_{3}}$ requires 2 moles of HCl. Thus, 

0.00526 moles of $N{{a}_{2}}C{{O}_{3}}$ requires = $0.00526\times 2=0.01052$ moles of HCl.

\[NaHC{{O}_{3}}+HCl\to NaCl+{{H}_{2}}O+C{{O}_{2}}\] 

Here, each mole of $NaHC{{O}_{3}}$ requires a mole of HCl. Thus,

0.00503 moles of $NaHC{{O}_{3}}$ will require 0.00503 HCl.

Total moles of HCl required = 0.01052 + 0.00503 = 0.01555 moles

Now,

1.1 moles of 0.1 M HCl is present in 1000 ml of solution. Thus,

0.01555 moles will be present in = $\dfrac{0.01555\times 1000}{0.1}=155.5ml$ of solution.

$\, therefore, $ Volume required to react completely with the mixture will be 155.5 ml.


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.

Ans: Mass percentage is defined as the ratio of the mass of the solute by the mass of solution multiplied by 100.

Mass percentage = $\dfrac{mas{{s}_{solute}}}{mas{{s}_{solution}}}\times 100$ 

Here,

We have given a mixture of 300 g of 25% solution and 400 g of 40% solution by mass. Thus,

300 g of 25% solution will contain = $\dfrac{25\times 300}{100}=75$ g of solute

400 g of 40% solution will contain = $\dfrac{40\times 400}{100}=160$ g of solute

Now, the resulting solution will have contents as;

Total mass of solute = 75 + 160 = 235 g

Total mass of solution = 300 + 400 = 700 g

Thus,

The mass percentage is given as,

Mass percentage of solute in the solution = $\dfrac{235}{700}\times 100=33.57$%

Similarly,

Mass percentage of water in the solution = 100 – 33.57 = 66.42%


8. An antifreeze solution is prepared from 222.6 g of ethylene glycol (${{C}_{2}}{{H}_{6}}{{O}_{2}}$ ) and 200g of water. Calculate the molality of the solution. If the density of the solution is 1.072 g/ml, then what shall be the molarity of the solution?

Ans:  Given that,

Mass of solute (${{C}_{2}}{{H}_{6}}{{O}_{2}}$) = 222.6 g

Molar mass of ${{C}_{2}}{{H}_{6}}{{O}_{2}}$ = 62 g/mol

Number of moles of ${{C}_{2}}{{H}_{6}}{{O}_{2}}$ = $\dfrac{222.6}{62}=3.59mol$ 

Mass of solvent (water) = 200 g

The total mass of solution = 422.6 g

Density of solution = 1.072 g/ml

Volume = $\dfrac{mass}{density}=\dfrac{422.6}{1.072}=394.21ml$ 

Thus,

Molality is given as,

Molality = $\dfrac{3.59}{200}=17.95m$

And, molarity is given as,

Molarity = $\dfrac{3.59\times 1000}{394.21}=9.106M$


9. A sample of drinking water was found to be severely contaminated with chloroform ($CHC{{l}_{3}}$ ), supposed to be a carcinogen. The level of contamination was 15 ppm (by mass).

  1. Express this in percent by mass.

Ans: We know that ppm is the unit that expresses the quantity in parts per million i.e., parts per ${{10}^{6}}$ of solution.

Here, 15 ppm means 15 parts per ${{10}^{6}}$ of solution.

Thus, mass percentage is given as;

Mass percentage = $\dfrac{15}{{{10}^{6}}}\times 100=15\times {{10}^{-4}}$


  1. Determine the molality of chloroform in water samples.

Ans: 15 ppm states that we have 15 g chloroform in ${{10}^{6}}$g of solution i.e., mass of solvent = ${{10}^{6}}$ g

Molar mass of chloroform = 119.5 g/mol

Number of moles of chloroform = $\dfrac{15}{119.5}=0.125mol$ 

Thus, 

Molality is given as,

Molality = $\dfrac{0.125\times 1000}{{{10}^{6}}}=125\times {{10}^{-6}}m$


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

Ans: Alcohol and water both possess a strong tendency to form intermolecular hydrogen bonding. When we mix the two liquids, a solution is formed as a result of the formation of H-bonds between alcohol and ${{H}_{2}}O$  molecules. These interactions are weaker and less extensive than those in pure ${{H}_{2}}O$. Hence, they show a positive deviation from ideal behavior. As a result, the solution of alcohol and water will have higher vapor pressure and lower boiling point than that of pure water and pure alcohol.


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

Ans: When gases dissolve in water, the process is accompanied by the release of excess heat energy, i.e., exothermic. According to Le Chatelier’s principle, when the temperature of the process is increased further the equilibrium shifts in the backward direction. Hence, gases become less soluble in liquids.


12. State Henry’s law and mention some important applications.

Ans: Henry’s law:

It states that the solubility of a gas in a liquid at a given temperature is directly proportional to the partial pressure of the gas. The effect of pressure on the solubility of a gas in a liquid is governed by this law.

Mathematically;

\[P={{K}_{H}}x\] 

where, 

P is the partial pressure of the gas 

x is  the mole fraction of the gas in the solution 

${{K}_{H}}$  is Henry’s Law constant.

Applications of Henry’s law:

  1. In the sea diving.

  2. In the production of carbonated beverages.


13. The partial pressure of ethane over a solution containing  $6.56\times {{10}^{-3}}g$  of ethane is 1 bar. If the solution contains $5\times {{10}^{-2}}g$ of ethane, then what shall be the partial pressure of the gas?

Ans: By Henry’s law, we know that the solubility of a gas in a liquid is directly proportional to the pressure of the gas. The proportionality sign is then replaced by Henry’s constant. This is stated as;

$m={{K}_{H}}\times P$ 

Also, mole fraction is directly proportional to the mass of the ethane.

Thus, 

For case 1,

\[6.56\times {{10}^{-3}}={{K}_{H}}\times 1\] 

For case 2,

\[5\times {{10}^{-2}}={{K}_{H}}\times x\] 

where, x is the partial pressure of gas when the solution contains $5\times {{10}^{-2}}g$ of ethane.

Now, equating both the above equations;

\[6.56\times {{10}^{-3}}=\dfrac{5\times {{10}^{-2}}}{x}\]

Thus,

The partial pressure of gas, $x=7.62$ bar


14. What is meant by positive and negative deviations from Raoult’s law and how is the sign of ${{\Delta }_{mix}}$H related to positive and negative deviations from Raoult’s law?

Ans: Positive deviation from Raoult’s law:

Solutions exhibit positive deviation from Raoult’s law when they have vapor pressure more than expected from the law.

Here, ${{\Delta }_{mix}}H$ is positive as the energy is consumed for breaking the strong interaction and forming weaker interactions. In a similar way, ${{\Delta }_{mix}}V$is positive as the expansion of volume takes place.


Negative Deviation from Raoult’s Law:

Solutions exhibit negative deviation from Raoult’s law when they have vapor pressure less than expected from the law.

Here, ${{\Delta }_{mix}}H$ is negative as the energy is released due to the replacement of weaker interactions by stronger ones.

 

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?

Ans: Given that,

Vapor pressure of pure water at boiling point, ${{P}^{0}}$ = 1.103 bar

Vapor pressure of solution, ${{P}_{s}}$ = 1.004 bar

An aqueous solution has 2% non-volatile solute. Thus, this states that the solution is 100 g from which 2 g $\left( {{W}_{2}} \right)$  is the non-volatile solute and the solvent is 98 g$\left( {{W}_{1}} \right)$ .

Molar mass of water $\left( {{M}_{1}} \right)$ = 18 g/mol.

Now, by Raoult’s law for dilute solutions;

\[\dfrac{{{P}^{0}}-{{P}_{s}}}{{{P}^{0}}}=\dfrac{{{n}_{2}}}{{{n}_{1}}+{{n}_{2}}}\approx \dfrac{{{n}_{2}}}{{{n}_{1}}}\] 

\[\dfrac{{{P}^{0}}-{{P}_{s}}}{{{P}^{0}}}=\dfrac{{}^{{{W}_{2}}}/{}_{{{M}_{2}}}}{{}^{{{W}_{1}}}/{}_{{{M}_{1}}}}\] 

Thus,

The molar mass of solute, ${{M}_{2}}=41.34g/mol$


16. Heptane and octane form an ideal solution. At 373 K, the vapor pressure of the two liquid components is 105.2 kPa and 46.8 kPa respectively. What will be the vapor pressure of a mixture of 26.0 g of heptane and 35.0 g of octane?

Ans: We have given the vapor pressures of the two liquid components i.e.

V. P. of heptane = 105.2 kPa

V. P. of octane = 46.8 kPa

Mass of heptane = 26 g

Mass of octane = 35 g

Molar mass of heptane = 100 g/mol

Molar mass of octane = 114 g/mol

Thus,

Number of moles of heptane present = $\dfrac{26}{100}=0.26mol$ 

Number of moles of octane present = $\dfrac{35}{114}=0.307mol$ 

Mole fraction of heptane = $\dfrac{0.26}{0.26+0.307}=0.458$ 

Mole fraction of octane = 1 – 0.458 = 0.541

Now, 

By Raoult’s law;

Vapor pressure of heptane = ${{x}_{H}}\times {{P}^{0}}$ 

                                           = $0.458\times 105.2=48.1816kPa$ 

Vapor pressure of octane = ${{x}_{O}}\times {{P}^{0}}$ 

                                         = $0.541\times 46.8=25.3188kPa$

Thus,

Vapor pressure of mixture = 48.1816 + 25.3188 = 73.5004kPa


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

Ans: We have given 1 molal solution i.e., 1 mole of non-volatile solute in 1000 g water.

Vapor pressure of water, ${{P}^{0}}$ = 12.3 kPa

Now,

Molar mass of water = 18 g/mol

Number of moles of water in the solution = $\dfrac{1000}{18}=55.56mol$ 

Mole fraction of solute = $\dfrac{1}{1+55.56}=0.0176$ 

Thus,

By Raoult’s law,

\[\dfrac{{{P}^{0}}-{{P}_{s}}}{{{P}^{0}}}=x\] 

\[\dfrac{12.3-{{P}_{s}}}{12.3}=0.0176\] 

Thus,

V. P. of solution, ${{P}_{s}}=12.082kPa$


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

Ans:  Given that,

Reduced vapor pressure = 80% of vapor pressure of pure components.

$\therefore {{P}_{s}}=\dfrac{80}{100}{{P}^{0}}=0.8{{P}^{0}}$ 

Now, let us consider the mass of a non-volatile solute as W g.

Molar mass of the same solute = 40 g/mol

So, number of moles of same solute = $\dfrac{W}{40}mol$ 

Mass of octane = 144 g

Molar mass of octane = 144 g/mol

So, number of moles of octane = 1 mol

Now,

Mole fraction of non-volatile solute = $\dfrac{{}^{W}/{}_{40}}{{}^{W}/{}_{40}+1}$ 

By Raoult’s law,

\[\dfrac{{{P}^{0}}-{{P}_{s}}}{{{P}^{0}}}=x\] 

\[\dfrac{{{P}^{0}}-0.8{{P}^{0}}}{{{P}^{0}}}=x=\dfrac{{}^{W}/{}_{40}}{{}^{W}/{}_{40}+1}\]

Thus,

Mass of solute, W = 10g


19. A solution containing 30g of non-volatile solute exactly in 90 g of water has a vapor pressure of 2.8 kPa at 298 K. Further, 18g of water is then added to the solution and the new of vapor pressure becomes 2.9 kPa at 298 K. Calculate

  1. the molar mass of the solute

Ans: Given that,

Mass of non-volatile solute = 30 g

Let molar mass of the same be M g/mol

Thus, number of moles of solute = $\dfrac{30}{M}mol$


Case 1

Mass of water = 90 g

Molar mass of water = 18 g/mol

So, number of moles of water involved = $\dfrac{90}{18}=5mol$ 

Vapor pressure of solution, ${{P}_{s}}$ = 2.8 kPa

Mole fraction of solute = $\dfrac{{}^{30}/{}_{M}}{{}^{30}/{}_{M}+5}$ 

By Raoult’s law,

\[\dfrac{{{P}^{0}}-{{P}_{s}}}{{{P}^{0}}}=x\] 

\[\dfrac{{{P}^{0}}-2.8}{{{P}^{0}}}=\dfrac{{}^{30}/{}_{M}}{{}^{30}/{}_{M}+5}\] 

\[\therefore \dfrac{{{P}^{0}}}{2.8}=1+\dfrac{6}{M}\]


Case 2  

Mass of water = 90 + 18 = 108 g

Molar mass of water = 18 g/mol

So, number of moles of water involved = $\dfrac{108}{18}=6mol$ 

Vapor pressure of solution, ${{P}_{s}}$ = 2.9 kPa

Mole fraction of solute = $\dfrac{{}^{30}/{}_{M}}{{}^{30}/{}_{M}+6}$ 

By Raoult’s law,

\[\dfrac{{{P}^{0}}-{{P}_{s}}}{{{P}^{0}}}=x\] 

\[\dfrac{{{P}^{0}}-2.8}{{{P}^{0}}}=\dfrac{{}^{30}/{}_{M}}{{}^{30}/{}_{M}+6}\] 

\[\therefore \dfrac{{{P}^{0}}}{2.9}=1+\dfrac{5}{M}\]

Now,

Considering both the above equations, we get;

\[\dfrac{2.9}{2.8}=\dfrac{1+{}^{6}/{}_{M}}{1+{}^{5}/{}_{M}}\] 

$\therefore $ Molar mass of solute;

M = 23 g/mol


  1. vapor pressure of water at 298 K.

Ans: Now, putting this value in equation (1.1)

\[\dfrac{{{P}^{0}}}{2.8}=1+\dfrac{6}{M}=1+\dfrac{6}{23}\]

\[\therefore  \text{V. P. of water}, {{P}^{0}}=3.53kPa\]


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

Ans: Given that,

Freezing point of pure water = 273.15 K


Case 1 –

A solution of 5% of cane sugar is in water i.e., 5 g of cane sugar is present in 100 g of water.

Molar mass of cane sugar = 342 g/mol

Molality is given as,

Molality, m = $\dfrac{5\times 1000}{342\times 100}=0.146m$ 

Freezing point of solution = 271 K

$\Delta {{T}_{f}}=273.15-271=2.15K$ 

Now, 

Lowering in freezing point is given as,

\[\Delta {{T}_{f}}={{K}_{f}}m\] 

\[{{K}_{f}}=\dfrac{2.15}{0.146}=14.726\]


Case 2 – 

A solution of 5% glucose is in water i.e. 5 g of glucose in 100 g of water.

Molar mass of glucose = 180 g/mol

Molality is given as,

Molality, m = $\dfrac{5\times 1000}{180\times 100}=0.277m$ 

\[{{K}_{f}}=14.726\] 

Lowering in freezing point is given as,

\[\Delta {{T}_{f}}={{K}_{f}}m\] 

        = $14.726\times 0.277=4.079$ 

Thus,

\[\Delta {{T}_{f}}=273.15-T=4.079\]

Thus, the freezing point;

T = 269.07 K


21. Two elements A and B form compounds having formula  $A{{B}_{2}}$  and  $A{{B}_{4}}$ . When dissolved in 20g of benzene (${{C}_{6}}{{H}_{6}}$ ). 1 g of $A{{B}_{2}}$ lowers the freezing point by 2.3 K whereas 1.0 g of $A{{B}_{4}}$ lowers it by 1.3 K. The molar depression constant for benzene is 5.1 $K.Kg/mol$ . Calculate atomic masses of A and B.

Ans: We know that the lowering in freezing point is stated as,

\[\Delta {{T}_{f}}={{K}_{f}}m\] 

which also can be evaluated as;

\[\Delta {{T}_{f}}={{K}_{f}}\times \dfrac{{{W}_{2}}\times 1000}{{{M}_{2}}\times {{W}_{1}}}\]

Mass of solvent (benzene), ${{W}_{1}}$ = 20 g

Molal depression constant, ${{K}_{f}}$ = 5.1 $K.Kg/mol$

Now,


Case 1 –

Solute is $A{{B}_{2}}$;

Mass of solute, ${{W}_{2}}$  = 1 g

$\Delta {{T}_{f}}$ = 2.3 K

Thus,

Molar mass for the solute i.e., $A{{B}_{2}}$ is given as,

\[{{M}_{2}}=\dfrac{{{K}_{f}}\times {{W}_{2}}\times 1000}{\Delta {{T}_{f}}\times {{W}_{1}}}\] 

\[{{M}_{2}}=\dfrac{5.1\times 1\times 1000}{2.3\times 20}=110.869g/mol\]


Case 2 – 

Solute is $A{{B}_{4}}$;

Mass of solute, ${{W}_{2}}$  = 1 g

$\Delta {{T}_{f}}$ = 1.3 K

Thus,

Molar mass for the solute i.e., $A{{B}_{4}}$ is given as,

\[{{M}_{2}}=\dfrac{{{K}_{f}}\times {{W}_{2}}\times 1000}{\Delta {{T}_{f}}\times {{W}_{1}}}\] 

\[{{M}_{2}}=\dfrac{5.1\times 1\times 1000}{1.3\times 20}=196.153g/mol\] 

Now,

Molar mass for $A{{B}_{2}}$ is given as;

A + 2 (B) = 110.869 g/mol

Molar mass for $A{{B}_{4}}$ is given as;

A + 4 (B) = 196.153 g/mol

Therefore,

Solving above 2 equations we get, the atomic masses as;

A = 25.59 u

B = 42.64 u

 

22. At 300 K, 36g of glucose present in a liter of its solution has an osmotic pressure of 4.08 bar. If the osmotic pressure of the solution is 1.52 bars at the same temperature, what would be its concentration?

Ans: The formulation for the osmotic pressure is given as;

\[\pi =CRT\]


Case 1 – 

T = 300 K

Mass of glucose = 36 g

Molar mass of glucose = 180 g/mol

Osmotic pressure = 4.08 bar

According to the formula;

\[\pi =\dfrac{W}{M}RT\] 

\[4.08=\dfrac{36}{180}\times R\times 300\] 

R = 0.068 units


Case 2 – 

Osmotic pressure = 1.52 bar

T = 300 K

Thus, by given formula;

\[\pi =CRT\]

Thus, the concentration will be,

C = $\dfrac{1.52}{0.068\times 300}=0.0745M$


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

  1. n-hexane and n-octane

Ans: Both are nonpolar and hence, the intermolecular interactions will be London dispersion forces.


  1. ${{I}_{2}}$  and $CC{{l}_{4}}$ .

Ans: Both are nonpolar and hence, the intermolecular interactions will be London   dispersion forces.


  1. $NaCl{{O}_{4}}$  and water

Ans: The intermolecular interactions will be ion-dipole interactions as $NaCl{{O}_{4}}$ is an ionic compound and water is a polar molecule.


  1. methanol and acetone

Ans: Both are polar molecules and hence, intermolecular interactions will be dipole-dipole interactions.


  1. acetonitrile ($C{{H}_{3}}CN$ ) and acetone (${{C}_{3}}{{H}_{6}}O$ )

Ans: Both are polar molecules and hence, intermolecular interactions will be  dipole-dipole interactions.


24. Based on solute-solvent interactions, arrange the following in order of increasing solubility in n-octane and explain. Cyclohexane, KCl, $C{{H}_{3}}OH$ , $C{{H}_{3}}CN$ .

Ans: The arrangement according to the increasing order of solubility in n-octane is;

KCl < $C{{H}_{3}}OH$ < $C{{H}_{3}}CN$ < Cyclohexane.

This is because;

  1. KCl is an ionic compound and will not dissolve in n-octane.

  2. $C{{H}_{3}}OH$ is a polar molecule and hence, will dissolve in n-octane.

  3. $C{{H}_{3}}CN$ is also a polar molecule but less than that of $C{{H}_{3}}OH$. Thus, it will dissolve in n-octane to a great extent.

  4. Cyclohexane is also a polar and simpler molecule which will cause its dissolving in all proportions.


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

  1. Phenol

Ans: Insoluble in water:


  1. Toluene

Ans: Toluene is not soluble in one another due to their non-polar nature.


  1. Formic acid 

Ans: Partially soluble in water:


  1. Ethylene glycol

Ans: Partially soluble


  1. Chloroform 

Ans: Highly insoluble in water:

  1. Pentanol

Ans: Partially soluble in water due to the presence of the alcohol functional group.


26. If the density of some lake water is 1.25 g/ml and contains 92g of $N{{a}^{+}}$  ions per kg of water, calculate the molality of $N{{a}^{+}}$ ions in the lake.

Ans:  Given that,

Mass of $N{{a}^{+}}$ions = 92 g

Molar mass of $N{{a}^{+}}$ions = 23 g/mol

Mass of water = 1000 g

$\therefore $ Molality is given as;

Molality, m = $\dfrac{92\times 1000}{23\times 1000}=4m$


27. If the solubility product of CuS is $6\times {{10}^{-16}}$ , calculate the maximum molarity of CuS aqueous  solution.

Ans: The dissociation reaction is given as;

\[CuS\rightleftharpoons C{{u}^{2+}}+{{S}^{2-}}\] 

The solubility product is given as; ${{K}_{sp}}=6\times {{10}^{-16}}$ 

Let the solubility of each ion be denoted as X mol/L.

Thus,

\[{{K}_{sp}}=\left[ C{{u}^{2+}} \right]\left[ {{S}^{2-}} \right]=X\times X\]

\[{{X}^{2}}=6\times {{10}^{-16}}\] 

\[=\sqrt{6\times {{10}^{-16}}}\] 

$\therefore $ Maximum molarity of CuS,

\[X=2.44\times {{10}^{-8}}mol/L\]


28. Calculate the mass percentage of aspirin (${{C}_{9}}{{H}_{8}}{{O}_{4}}$ ) in acetonitrile ($C{{H}_{3}}CN$ ) when 6.5 g of  ${{C}_{9}}{{H}_{8}}{{O}_{4}}$ is dissolved in 450 g of $C{{H}_{3}}CN$.

Ans: Given that,

Mass of aspirin = 6.5 g

Mass of acetonitrile = 450g

Total mass of solution = 6.5 + 450 = 456.5 g

Mass percentage is given as,

Mass percentage = $\dfrac{mas{{s}_{solute}}}{mas{{s}_{solution}}}\times 100$ 

                            = $\dfrac{6.5}{456.5}\times 100=1.423%$


29. Nalorphene (${{C}_{19}}{{H}_{21}}N{{O}_{3}}$ ), 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 $1.5\times {{10}^{-3}}$ m aqueous solution required for the above dose.

Ans: We have given,

Molality of solution = $1.5\times {{10}^{-3}}$m; which states that the $1.5\times {{10}^{-3}}$moles are present in 1 kg of solvent.

Molar mass of nalorphine = 311 g/mol

Thus, 

Mass of solute = $1.5\times {{10}^{-3}}\times 311=0.4665g$ 

Total mass of the solution = 0.4665 + 1000 = 1000.4665 g

From this we can say that 0.4665 g narlophene requires a total solution of 1000.4665 g.

Likewise;

1.5 mg narlophene will have;

Mass of solution = $\dfrac{1.5\times {{10}^{-3}}\times 1000.4665}{0.4665}=3.216g$


30. Calculate the amount of benzoic acid (${{C}_{6}}{{H}_{5}}COOH$ ) required for preparing 250 mL of 0.15M solution in methanol.

Ans: Given that,

We have a 0.15M solution which states that the solution of 1000 ml has 0.15 moles of solute.

Thus, to prepare 250 ml of solution we will require = $\dfrac{250\times 0.15}{1000}=0.0375mol$ 

Molar mass of benzoic acid = 122 g/mol

Therefore, mass of benzoic acid is given as,

Mass = $0.0375\times 122=4.575g$


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 below. Explain briefly.

Acetic acid < trichloroacetic acid < trifluoroacetic acid.

Ans: The structures for the given acids are;

(image will be uploaded soon)

We know that, H is least electronegative whereas, F is most electronegative. Thus, F can withdraw electrons towards itself more than Cl and H. This signifies that trifluoroacetic acid can easily lose  ${{H}^{+}}$  ions i.e., ionizes to the greatest extent. The more ions produced, the greater the depression of the freezing point. Therefore, the depression in the freezing point increases in the order:

Acetic acid < trichloroacetic acid < trifluoroacetic acid.


32. Calculate the depression in the freezing point of water when 10 g of $C{{H}_{3}}C{{H}_{2}}CHClCOOH$  is  added to 250 g of water. ${{K}_{a}}=1.4\times {{10}^{-3}},{{K}_{f}}=1.86K.Kg/mol.$

Ans: Given that,

Mass of $C{{H}_{3}}C{{H}_{2}}CHClCOOH$ = 10 g

Molar mass of $C{{H}_{3}}C{{H}_{2}}CHClCOOH$ = 122.5 g/mol

Number of moles of the same, n = $\dfrac{10}{122.5}=0.0816moles$ 

Mass of water (solvent), ${{W}_{1}}$  = 250 g

Molality is given by;

Molality = $\dfrac{n}{{{W}_{1}}}=\dfrac{0.0816\times 1000}{250}=3.265\times {{10}^{-1}}m$ 

Also, we know that,

\[{{K}_{a}}=1.4\times {{10}^{-3}},{{K}_{f}}=1.86K.Kg/mol.\] 

Now, 

The dissociation reaction is given as,

\[\underset{\text{at initial conc}\text{.}}{\mathop{{}}}\,\underset{C}{\mathop{C{{H}_{3}}C{{H}_{2}}CHClCOOH}}\,\leftrightarrow \underset{0}{\mathop{C{{H}_{3}}C{{H}_{2}}CHClCO{{O}^{-}}}}\,+\underset{0}{\mathop{{{H}^{+}}}}\,\]

\[\underset{\text{at equilibrium}}{\mathop{{}}}\,\underset{C\left( 1-\alpha  \right)}{\mathop{C{{H}_{3}}C{{H}_{2}}CHClCOOH}}\,\leftrightarrow \underset{C\alpha }{\mathop{C{{H}_{3}}C{{H}_{2}}CHClCO{{O}^{-}}}}\,+\underset{C\alpha }{\mathop{{{H}^{+}}}}\,\]

where, $\alpha $ is the degree of dissociation.

Now,

Dissociation constant is given as;

\[{{K}_{a}}=\dfrac{{{C}^{2}}{{\alpha }^{2}}}{C\left( 1-\alpha  \right)}\] 

As, $\alpha $<<1, $\left( 1-\alpha  \right)\approx 1$ 

\[{{K}_{a}}=C{{\alpha }^{2}}\]

\[\alpha =\sqrt{\dfrac{{{K}_{a}}}{C}}=0.06548\] 

Again, 

$ \underset{at\text{ }\operatorname{in}itial\text{ }conc.}{\mathop{{}}}\,\text{ }\underset{C}{\mathop{C{{H}_{3}}C{{H}_{2}}CHClCOOH}}\,\rightleftarrows \underset{0}{\mathop{C{{H}_{3}}C{{H}_{2}}CHClCO{{O}^{-}}}}\,+{{\underset{0}{\mathop{H}}\,}^{+}} $

$ \underset{\text{at equilibrium}}{\mathop{{}}}\,\text{   }\underset{C(1-\alpha )}{\mathop{C{{H}_{3}}C{{H}_{2}}CHClCOOH}}\,\rightleftarrows \underset{C\alpha }{\mathop{C{{H}_{3}}C{{H}_{2}}CHClCO{{O}^{-}}}}\,+{{\underset{C\alpha }{\mathop{H}}\,}^{+}} $

\[\underset{\text{initial moles}}{\mathop{{}}}\,\underset{1}{\mathop{C{{H}_{3}}C{{H}_{2}}CHClCOOH}}\,\leftrightarrow \underset{0}{\mathop{C{{H}_{3}}C{{H}_{2}}CHClCO{{O}^{-}}}}\,+\underset{0}{\mathop{{{H}^{+}}}}\,\]

\[\underset{\text{at equlibrium}}{\mathop{{}}}\,\underset{1-\alpha }{\mathop{C{{H}_{3}}C{{H}_{2}}CHClCOOH}}\,\leftrightarrow \underset{\alpha }{\mathop{C{{H}_{3}}C{{H}_{2}}CHClCO{{O}^{-}}}}\,+\underset{\alpha }{\mathop{{{H}^{+}}}}\,\]

Thus,

Total moles at equilibrium = $1-\alpha +2\alpha =1+\alpha $ 

Then Van’t Hoff factor is given as,

\[i=1+\alpha \] 

Now, putting the values we get,

\[i=1+0.06548=1.06548\]

Now,

Lowering in freezing point is given as;

\[\Delta {{T}_{f}}=i{{K}_{f}}m\]

\[\Delta {{T}_{f}}=1.06548\times 1.86\times 0.3265=0.6470K\] 

 

33. 19.5 g of $C{{H}_{2}}FCOOH$  is dissolved in 500 g of water. The depression in the freezing point of water observed is 1.0${}^\circ $ C. Calculate the Van’t Hoff factor and dissociation constant of fluoro acetic  acid.

Ans: Given that,

Mass of $C{{H}_{2}}FCOOH$ = 19.5 g

Molar mass (actual) of $C{{H}_{2}}FCOOH$= 78 g/mol

Mass of water = 500 g

\[{{K}_{f}}=1.86K.Kg/mol.\]

Depression in freezing point, $\Delta {{T}_{f}}=1{}^\circ C=1K$ 

Now, 

Lowering in freezing point is stated as;

\[\Delta {{T}_{f}}={{K}_{f}}m={{K}_{f}}\dfrac{{{W}_{2}}\times 1000}{{{M}_{2}}\times {{W}_{1}}}\]

\[{{M}_{2}}=\dfrac{{{K}_{f}}\times {{W}_{2}}\times 1000}{\Delta {{T}_{f}}\times {{W}_{1}}}\]

The observed molar mass will be, 

\[{{M}_{2}}=72.54g/mol\] 

Thus,

The Van’t Hoff factor can be calculated as;

\[i=\dfrac{{{\left( {{M}_{2}} \right)}_{actual}}}{{{\left( {{M}_{2}} \right)}_{observed}}}\] 

i = 1.0752

Now,

The dissociation reaction is given as,

\[\underset{\text{at initial conc}\text{.}}{\mathop{{}}}\,\underset{C}{\mathop{C{{H}_{2}}FCOOH}}\,\leftrightarrow \underset{0}{\mathop{C{{H}_{2}}FCO{{O}^{-}}}}\,+\underset{0}{\mathop{{{H}^{+}}}}\,\]

\[\underset{\text{at equilibrium}}{\mathop{{}}}\,\underset{C\left( 1-\alpha  \right)}{\mathop{C{{H}_{2}}FCOOH}}\,\leftrightarrow \underset{C\alpha }{\mathop{C{{H}_{2}}FCO{{O}^{-}}}}\,+\underset{C\alpha }{\mathop{{{H}^{+}}}}\,\]

where, $\alpha $ is the degree of dissociation.

Total resulting concentration is given as,

Total = $C\left( 1-\alpha +2\alpha  \right)=C\left( 1+\alpha  \right)$

From this, Van’t Hoff factor is given as;

\[i=\dfrac{C\left( 1+\alpha  \right)}{C}=1+\alpha \] 

i = 1.0752 = $1+\alpha $ 

Thus,

$\alpha $= 0.0752

And,

The concentration (molarity) can be calculated as;

Having volume of 500 ml – 

\[Concentration=\dfrac{19.5\times 1000}{78\times 500}=0.5M\]

From all these data, dissociation constant can be calculated as;

\[{{K}_{a}}=\dfrac{\left[ C{{H}_{2}}FCO{{O}^{-}} \right]\left[ {{H}^{+}} \right]}{\left[ C{{H}_{2}}FCOOH \right]}=\dfrac{{{C}^{2}}{{\alpha }^{2}}}{C\left( 1-\alpha  \right)}\] 

\[{{K}_{a}}=\dfrac{C{{\alpha }^{2}}}{1-\alpha }\]  

Putting the specified values, we get;

\[{{K}_{a}}=\dfrac{0.5\times {{0.0752}^{2}}}{1-0.0752}\]

Thus,

Dissociation constant, ${{K}_{a}}=2.299\times {{10}^{-4}}$ .

 

34. Vapor pressure of water at 293 K is 17.535 mm Hg. Calculate the vapor pressure of water at 293 K when 25 g of glucose is dissolved in 450 g of water.

Ans: Given that,

Vapor pressure of water, ${{P}^{0}}$ = 17.535 mm Hg

Mass of glucose, ${{W}_{2}}$ = 25 g

Molar mass of glucose, ${{M}_{2}}$ = 180 g/mol

Mass of water, ${{W}_{1}}$ = 450 g

Molar mass of water, ${{M}_{1}}$= 18 g/mol

Now,

Number of moles of glucose in the solution can be stated as;

\[{{n}_{2}}=\dfrac{{{W}_{2}}}{{{M}_{2}}}=\dfrac{25}{180}=0.138mol\] 

Number of moles of water in the solution can be stated as;

\[{{n}_{1}}=\dfrac{{{W}_{1}}}{{{M}_{1}}}=\dfrac{450}{18}=25mol\] 

Thus, by Raoult’s law,

\[\dfrac{{{P}^{0}}-{{P}_{s}}}{{{P}^{0}}}=\dfrac{{{n}_{2}}}{{{n}_{1}}+{{n}_{2}}}\] 

\[\dfrac{17.535-{{P}_{s}}}{17.535}=\dfrac{0.138}{0.138+25}\] 

Thus, V. P. of water,

\[{{P}_{s}}=17.44mmHg\]


35. Henry’s law constant for the molality of methane in benzene at 298 K is $4.27\times {{10}^{5}}$ mm Hg. Calculate the solubility of methane in benzene at 298 K under 760 mm Hg.

Ans: Given that,

Henry’s law constant, ${{K}_{H}}$  = $4.27\times {{10}^{5}}$mm Hg

Pressure = 760 mm Hg

Thus, the molality can be calculated as;

By henry’s law,

\[P={{K}_{H}}m\] 

\[m=\dfrac{P}{{{K}_{H}}}=\dfrac{760}{4.27\times {{10}^{5}}}\] 

Molality / solubility = $1.779\times {{10}^{-3}}m$


36. 100 g of liquid A (molar mass 140 g/mol) was dissolved in 1000 g of liquid B (molar mass 180 g/mol). The vapor pressure of pure liquid B was found to be 500 torr. Calculate the vapor pressure of pure liquid A and its vapor pressure in the solution if the total vapor pressure of the solution is 475 Torr. 

Ans: Given that,

Total vapor pressure of the solution, ${{P}_{Total}}$ = 475 Torr

Liquid A –

Mass = 100 g

Molar mass = 140 g/mol

Number of moles of A, ${{n}_{A}}=\dfrac{100}{140}=0.7142mol$ 

Liquid B -  

Mass = 1000 g

Molar mass = 180 g/mol

Number of moles of B, ${{n}_{B}}=\dfrac{1000}{180}=5.56mol$ 

V. P. of pure liquid B, ${{P}_{B}}^{0}$ = 500 Torr

Thus,

Mole fraction of A, ${{x}_{A}}=\dfrac{{{n}_{A}}}{{{n}_{A}}+{{n}_{B}}}$ 

\[\therefore {{x}_{A}}=0.1138\] 

Mole fraction of B, ${{x}_{B}}=\dfrac{{{n}_{B}}}{{{n}_{B}}+{{n}_{A}}}$ 

\[\therefore {{x}_{B}}=0.886\] 

Now, 

By Raoult’s law,

\[{{P}_{B}}={{P}_{B}}^{0}{{x}_{B}}\]

\[{{P}_{B}}=500\times 0.886=443.08Torr\] 

Hence,

\[{{P}_{Total}}={{P}_{A}}+{{P}_{B}}\] 

\[\Rightarrow {{P}_{A}}={{P}_{Total}}-{{P}_{B}}\] 

\[{{P}_{A}}=475-443.08=31.91Torr\] 

Now,

V. P. of pure liquid A can be found as;

By Raoult’s law,

\[{{P}_{A}}={{P}_{A}}^{0}{{x}_{A}}\] 

Thus,

V. P. of pure liquid A,

\[{{P}_{A}}^{0}=\dfrac{{{P}_{A}}}{{{x}_{A}}}=280.45Torr\]


37. Vapor 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 ${{P}_{Total}}$, ${{P}_{Chloroform}}$ and ${{P}_{Acetone}}$  as a function of ${{x}_{Acetone}}$ . The experimental data observed for different compositions of mixture is.

${{x}_{Acetone}}\times 100$

0

11.8

23.4

36.0

50.8

58.2

64.5

72.1

${{P}_{Acetone}}$/mmHg

0

54.9

110.1

202.4

322.7

405.9

454.1

521.1

${{P}_{Chloroform}}$/mmHg

632.8

548.1

469.4

359.7

257.7

193.6

161.2

120.7


Ans: From the given table, following data can be generated;

${{x}_{Acetone}}\times 100$

0

11.8

23.4

36.0

50.8

58.2

64.5

72.1

${{P}_{Acetone}}$/mmHg

0

54.9

110.1

202.4

322.7

405.9

454.1

521.1

${{P}_{Chloroform}}$/mmHg

632.8

548.1

469.4

359.7

257.7

193.6

161.2

120.7

${{P}_{Total}}$/mmHg

632.8

603.0

579.5

562.1

580.4

599.5

615.3

641.8


The graph can be drawn as;

(image will be uploaded soon)

From the above table and the graph, we can say that the solution shows the negative deviation from ideal behavior (graph of ${{P}_{Total}}$ is downwards).


38. Benzene and toluene form an ideal solution over the entire range of composition. The vapor 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 the vapor phase if 80 g of benzene is mixed with 100 g of toluene.

Ans: Given that,

Mass of benzene = 80 g

Molar mass of benzene = 78 g/mol

Number of moles of benzene, ${{n}_{B}}=\dfrac{80}{78}=1.025moles$ 

Vapor pressure of pure benzene, ${{P}_{B}}^{0}$ = 50.71 mm Hg 

Mass of toluene = 100 g

Molar mass of toluene = 92 g/mol

Number of moles of toluene, ${{n}_{T}}=\dfrac{100}{92}=1.086$ moles

Vapor pressure of pure toluene, ${{P}_{T}}^{0}$ = 32.06 mm Hg

Now,

Mole fraction of benzene, \[{{x}_{B}}=\dfrac{{{n}_{B}}}{{{n}_{B}}+{{n}_{T}}}\] 

\[\therefore {{x}_{B}}=0.4855\] 

Mole fraction of toluene, ${{x}_{T}}=1-0.4855=0.5144$ 

Now, 

By raoult’s law,

The partial v. p. of benzene, 

\[{{P}_{B}}={{P}_{B}}^{0}{{x}_{B}}\] 

\[\therefore {{P}_{B}}=24.61mmHg\] 

Similarly, the partial v. p. of toluene, 

\[{{P}_{T}}={{P}_{T}}^{0}{{x}_{T}}\] 

\[\therefore {{P}_{T}}=16.491mmHg\] 

Thus, the mole fraction of benzene in vapor phase is given as;

Mole fraction = $\dfrac{{{P}_{B}}}{{{P}_{B}}+{{P}_{T}}}=0.598$


39. The air is a mixture of a number of gases. The major components are oxygen and nitrogen with an approximate proportion of 20% to 79% by volume at 298 K. The water is in equilibrium with air at a pressure of 10 atm. At 298 K if the Henry’s law constants for oxygen and nitrogen are $3.3\times {{10}^{7}}$  mm and $6.51\times {{10}^{7}}$  mm respectively, calculate the composition of these gases in water.

Ans: Given that,

Oxygen in air = 20% i.e., 20 g of oxygen is present in 100 g air.

Nitrogen in air = 79% i.e., 79 g of nitrogen is present in 100 g of air.

Henry’s law constant;

For oxygen = $3.3\times {{10}^{7}}$mm Hg

For nitrogen = $6.51\times {{10}^{7}}$mm Hg

The water is in equilibrium with air at a pressure of 10 atm i.e., 7600 mm Hg.

Thus, the partial pressures are given as;

Oxygen;

\[{{P}_{{{O}_{2}}}}=\dfrac{20}{100}\times 7600=1520mmHg\] 

Nitrogen;

\[{{P}_{{{N}_{2}}}}=\dfrac{79}{100}\times 7600=6004mmHg\] 

Therefore, by Henry’s law;

Oxygen –

\[{{P}_{{{O}_{2}}}}={{K}_{H}}{{x}_{{{O}_{2}}}}\] 

\[{{x}_{{{O}_{2}}}}=\dfrac{1520}{3.3\times {{10}^{7}}}=4.606\times {{10}^{-5}}\] 

Nitrogen – 

\[{{P}_{{{N}_{2}}}}={{K}_{H}}{{x}_{{{N}_{2}}}}\] 

\[{{x}_{{{N}_{2}}}}=\dfrac{6004}{6.51\times {{10}^{7}}}=9.222\times {{10}^{-5}}\]


40. Determine the amount of $CaC{{l}_{2}}$  (i = 2.47) dissolved in 2.5 liters of water such that its osmotic pressure is 0.75 atm at 27${}^\circ $ C.

Ans: Given that,

Volume = 2.5 L

Van’t Hoff factor = 2.47

Osmotic pressure = 0.75 atm

Gas constant = $0.0821Latm{{K}^{-1}}mo{{l}^{-1}}$ 

Temperature = 273 + 27 = 300 K

Molar mass of $CaC{{l}_{2}}$= 111g/mol

Osmotic pressure is given as,

\[\pi =iCRT\] 

\[\pi =i\dfrac{n}{V}RT=i\dfrac{W}{M\times V}RT\] 

\[W=\dfrac{\pi MV}{iRT}=\dfrac{0.75\times 111\times 2.5}{2.47\times 0.0821\times 300}\] 

Thus, the amount of $CaC{{l}_{2}}$required,

W = 3.42g


41. Determine the osmotic pressure of a solution prepared by dissolving 25 mg of ${{K}_{2}}S{{O}_{4}}$  in 2 liters of water at 25${}^\circ $C, assuming that it is completely dissociated.

Ans: Given that,

Mass of ${{K}_{2}}S{{O}_{4}}$= 25 mg = 0.025 g

Molar mass of ${{K}_{2}}S{{O}_{4}}$ = 174 g/mol

Volume = 2 L

Temperature = 25 + 273 = 298 K

Gas constant = $0.0821Latm{{K}^{-1}}mo{{l}^{-1}}$

Dissociation reaction is given by,

\[{{K}_{2}}S{{O}_{4}}\to 2{{K}^{+}}+S{{O}_{4}}^{2-}\]

Number of ions produced = Van’t Hoff factor = i = 3

Thus,

Osmotic pressure is given as,

\[\pi =iCRT\] 

\[\pi =i\dfrac{n}{V}RT=i\dfrac{W}{M\times V}RT\] 

\[\pi =\dfrac{3\times 0.025\times 0.0821\times 298}{174\times 2}\] 

\[\pi =5.272\times {{10}^{-3}}atm\] 

$\therefore $ The osmotic pressure of the solution is $5.272\times {{10}^{-3}}atm$.


Class 12 Chemistry NCERT Solutions Chapter 1- Quick Overview of Topics 

Class 12 Chemistry NCERT Solutions Chapter 1-Quick Overview of Detailed Structure of Topics and Subtopics Covered.


Topics

Sub-Topics

Types of Solutions

Classification based on the state of solute and solvent

Expressing Concentration

Various units and methods for expressing concentration

Solubility

Factors affecting solubility and solubility curves

Vapour Pressure of Liquid Solutions

Raoult's law, ideal and non-ideal solutions, and colligative properties related to vapour pressure

Ideal and Non-Ideal Solutions

Deviations from ideal behaviour and factors influencing solution behaviour

Colligative Properties

Explanation of colligative properties such as lowering of vapour pressure, elevation of boiling point, depression of freezing point, and osmotic pressure

Abnormal Molar Masses

Calculations and explanations related to abnormal molar masses of solutes

Van't Hoff Factor

Definition and significance of the Van't Hoff factor

Osmosis and Osmotic Pressure

Understanding osmosis and osmotic pressure in solutions

Reverse Osmosis and Osmotic Pressure

Applications and implications of reverse osmosis



Benefits of Referring to Vedantu’s NCERT Solutions for Class 12 Chemistry

The Vedantu’s Class 12 NCERT Solutions of Chemistry provided here in PDFs offer various benefits, including:


  • The answers provided here are straightforward.

  • It provides the Concise Notes and saves a lot of time for Revision.

  • To facilitate comprehension, solutions are presented in phases.

  • All of the questions from each chapter are answered.

  • For effective preparations, comprehend all of the processes outlined in the answers.


Important Links for Class 12 Chemistry Chapter 1 Solutions

Students can access extra study materials on Solutions. These resources are available for download and offer additional support for your studies.


Sr.No

Important Links for Chemistry Chapter 1 Solutions 

1.

Solutions Important Questions

2.

Solutions Revision Notes

3.

Solutions NCERT Exemplar Solutions



Conclusion

Vedantu's NCERT Class 12 Chemistry Solutions for chapter 1 "Solutions" provide comprehensive and effective assistance to students studying this subject. The solutions offer a thorough understanding of the chapter's concepts and problem-solving techniques. With accurate explanations and step-by-step approaches, students can easily grasp the complexities of the topic. Vedantu's solutions not only cover the textbook exercises but also provide additional practice questions and solutions to further enhance students' learning. The content is well-structured and designed to cater to the needs of students, helping them build a strong foundation in chemistry. Overall, Vedantu's NCERT Class 12 Chemistry Solutions for chapter 1 Solutions are a valuable resource for students seeking clarity and proficiency in this subject.


NCERT Solutions Class 12 Chemistry | Chapter-wise Links

Access Vedantu’s chapter-wise NCERT Chemistry Class 12 Solutions PDFs below for all other chapters.




NCERT Solutions Class 12 Chemistry - Related Links

FAQs on NCERT Solutions for Class 12 Chemistry Chapter 1 - Solutions

1. What are the Topics Covered in Chapter 1 of NCERT Class 12 Chemistry?

Topics covered in the NCERT Class 12 Chapter 1 of Chemistry are as follows:

  1. Solutions.

  2. Types of Solutions.

  3. Solubility.

  4. Ideal and Non-Ideal Solutions.

  5. Concentration of Solutions.

  6. Colligative Properties and Determination.

  7. Vapour Pressure of Liquid Solutions.

  8. Abnormal Molar Masses.

Other than these topics, Class 12 Chemistry chapter 1 also includes the complicated Henry’s Laws. Chapters 2 of Solutions occupy 5 marks on the board paper. Hence it is important to study thoroughly.


The NCERT solution offers a detailed question pattern and solution to the problems of this chapter. Hence it is essential to follow the solution in the time of revision of the chapter.

2. Where do I Get the PDF of NCERT Solutions Class 12 Chapter 1?

The online version of NCERT Chemistry Class 12 Solutions PDF is available on many sites. These solutions are available online for easy download. A student needs to download a PDF file of the NCERT solutions and then save it for future use.


The downloaded NCERT Solutions for Class 12 Chemistry chapter 1 PDF download has many advantages such as it can be accessed from anywhere, at any time, even in offline mode. It comes in very handy when students are doing self-study or revision work. It also saves a lot of money that goes into buying the solution. Therefore, the PDF version of the Class 12 Chemistry Solution is commonly in demand.

3. How are NCERT Solutions Chemistry Class 12 Helpful in Exams?

NCERT Solutions Chemistry Class 12 is very helpful to the students for various reasons. That is, Solutions are written in simple and easy language, which is easily understood by students. The students also get to clear their doubts about the basic concept of the topic.

It gives them an idea about the pattern of a question in the boards along with a step-by-step solution. Students save a lot of their time as all the theories are presented in a concise form. Several problems in the solutions will help the students to prepare for their board exam as well any competitive exam that they might consider appearing in the future.

4. Can I get the NCERT Solutions for chapter 1 of Class 12 Chemistry PDF online?

You can easily find the NCERT Solutions for chapter 1 “Solutions” of Class 12 Chemistry free of cost on the Vedantu website and the Vedantu app. The entire solution is uploaded on the website and can be accessed online. However, for offline access and convenience of the student, one can download the PDF and view it offline as well. As all these questions are answered and solved by experts,  one does not need to think twice about their credibility.

5. What are the chapters in Chemistry Chapter 1, Class 12 NCERT solutions?

According to the updated NCERT Syllabus, there are 10 chapters in Class 12 Chemistry. Here is a list of the chapters:


Chapter. No.

Chapter Name

1

Solutions

2

Electrochemistry

3

Chemical Kinetics

4

d-and f-Block Elements

5

Coordination Compounds

6

Haloalkanes and Haloarenes

7

Alcohols, Phenols and Ethers

8

Aldehydes, Ketones and Carboxylic Acids

9

Amines

10

Biomolecules

6. Is chapter 1, Chemistry class 12 NCERT solutions, an easy chapter?

It is difficult to classify a chapter as easy or difficult in Class 12 Chemistry. This solely depends on the students and their liking for a particular topic. Having said that, many students find Chapter 1, “Solutions'' to be simpler than chapters pertaining to organic chemistry. Nonetheless, students need to focus and pay attention to all the important topics of this subject, like packing efficiency, lattice structures, unit cell dimensions, etc.  Vedantu provides a FREE PDF download of Chapter 1 Chemistry Class 12 NCERT solutions.

7. How do Vedantu’s Solutions for Chemistry class 12 NCERT Solutions chapter 1 help students score high marks?

Vedantu’s Chemistry class 12 NCERT Solutions Chapter 1 includes all the answers to the questions given in the Chapter. These answers are written by subject experts, and the students can trust them. Whenever the student is stuck in any question, one can refer to these solutions to understand the concept better. It would also help to save valuable time while studying. Students can go through Chemistry Class 12 Chapter 1 exercise solutions to boost their preparations.

8. Why is solution important in class 12 Chemistry NCERT Solutions Chapter 1?

Solution chemistry in Class 12 Chemistry NCERT Solutions Chapter 1 is crucial, unravelling the complexities of solubility and chemical reactions.

9. What are the types of solutions?

Class 12 Chemistry Chapter 1 NCERT Solutions covers various types of solutions, including homogeneous and heterogeneous ones.

10. What are the two types of solid solutions?

Exploring Chemistry Class 12 Chapter 1 exercise solutions reveals two types of solid solutions: substitutional and interstitial.