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CBSE Class 12 Chemistry 2019 Delhi Set 1 Solved Paper

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Question : 16 of 27
Marks: +1, -0
A 4%4\% solution w/w\mathrm{w}/\mathrm{w} of sucrose (M=342 g(M=342\,\mathrm{g} mol−1\mathrm{mol}^{-1} ) in water has a freezing point of 271.15 K271.15\,\mathrm{K}. Calculate the freezing point of 5%5\% glucose (M=180 g mol−1)(M=180\,\mathrm{g}\,\mathrm{mol}^{-1}) in water.
(Given: Freezing point of pure water =273.15 K=273.15\,\mathrm{K} )
Solution:  
Given:
Sucrose solution =4%(w/w)=4\%(\mathrm{w}/\mathrm{w})
M=342 g mol−1M=342\,\mathrm{g}\,\mathrm{mol}^{-1}
Freezing point of solution =271.15 K=271.15\,\mathrm{K}
Freezing point of pure water =273.15 K=273.15\,\mathrm{K}
Glucose solution =5%=5\%
M=180 g mol−1M=180\,\mathrm{g}\,\mathrm{mol}^{-1}
To calculate:
Freezing point of 5%5\% glucose solution.
Formula:
ΔTf  =i×Kf×m\Delta T_f\;= i \times K_f \times m
m  =    moles of solute    Kg   of solvent  m\;=\;\frac{\;\text{moles of solute}\;}{\;\mathrm{Kg}\;\text{ of solvent}\;}
  moles    =    mass    molar mass  \;\text{moles}\;\;=\;\frac{\;\text{mass}\;}{\;\text{molar mass}\;}
Sucrose solution is 4%(w/w)4\%(\mathrm{w}/\mathrm{w}) which means there is 4.0 grams of sucrose dissolved in 100 g100\,\mathrm{g} of solution.
Mass of solution == mass of solute + mass of solvent 100.0 g=4.0 g+100.0\,\mathrm{g}=4.0\,\mathrm{g}+ mass of solvent.
Hence, mass of solvent =100.0−4.0=96.0 g=100.0-4.0=96.0\,\mathrm{g}
96 g×1 kg1000 g=0.096 kg96\,\mathrm{g} \times \frac{1\,\mathrm{kg}}{1000\,\mathrm{g}} = 0.096\,\mathrm{kg}
Moles of solute
  moles    =    mass    molar mass  =4.0 g342 g mol−1\;\text{moles}\;\;=\;\frac{\;\text{mass}\;}{\;\text{molar mass}\;} = \frac{4.0\,\mathrm{g}}{342\,\mathrm{g}\,\mathrm{mol}^{-1}}
=0.011695  moles  =0.011695 \;\text{moles}\;
Molality of solution:
m=  moles of solute    kg   of solvent  m = \frac{\;\text{moles of solute}\;}{\;\mathrm{kg}\;\text{ of solvent}\;} =0.011695 moles0.096 kg  water=0.1218 m= \frac{0.011695\,\mathrm{moles}}{0.096\,\mathrm{kg}\;\text{water}} = 0.1218\,\mathrm{m}
Sucrose is a non-electrolyte, hence i=1i=1
ΔTf  =  Freezing point of solvent\Delta T_f\;=\;\text{Freezing point of solvent}
−  Freezing point of solution- \;\text{Freezing point of solution}
ΔTf  =273.15 K−271.15 K=2.00 K\Delta T_f\;=273.15\,\mathrm{K}-271.15\,\mathrm{K}=2.00\,\mathrm{K}
ΔTf  =i×Kf×m\Delta T_f\;= i \times K_f \times m
  2.00 K=i×Kf×0.1218\;2.00\,\mathrm{K}=i \times K_f \times 0.1218
  Kf=16.42 Km−1\; K_f=16.42\,\mathrm{Km}^{-1}
For glucose solution,
Glucose solution is 5%(w/w)5\%(\mathrm{w}/\mathrm{w}) which means there is 5.0 grams of glucose dissolved in 100 g100\,\mathrm{g} of solution.
Mass of solution == mass of solute + mass of solvent 100.0 g=5.0 g+100.0\,\mathrm{g}=5.0\,\mathrm{g}+ mass of solvent.
Hence, mass of solvent =100.0−5.0=95.0 g=100.0-5.0=95.0\,\mathrm{g}
95.0 g×1 kg1000 g=0.095 kg95.0\,\mathrm{g} \times \frac{1\,\mathrm{kg}}{1000\,\mathrm{g}} = 0.095\,\mathrm{kg}
Moles of solute
  moles  =    mass    molar mass  \;\text{moles}\;=\;\frac{\;\text{mass}\;}{\;\text{molar mass}\;} =5.0 g180 g mol−1=0.0277  moles  = \frac{5.0\,\mathrm{g}}{180\,\mathrm{g}\,\mathrm{mol}^{-1}} = 0.0277 \;\text{moles}\;
Molality of solution:
m=  moles of solute    kg   of solvent  m = \frac{\;\text{moles of solute}\;}{\;\mathrm{kg}\;\text{ of solvent}\;} =0.0277  moles  0.095 kg  water=0.2923 m= \frac{0.0277 \;\text{moles}\;}{0.095\,\mathrm{kg}\;\text{water}} = 0.2923\,\mathrm{m}
Glucose is a non - electrolyte, hence i=1i=1
ΔTf=i×Kf×m\Delta T_f = i \times K_f \times m
ΔTf  =1×16.42×0.2923\Delta T_f\;=1 \times 16.42 \times 0.2923
ΔTf  =4.801 Km−1\Delta T_f\;=4.801\,\mathrm{Km}^{-1}
ΔTf  =  Freezing point of solvent\Delta T_f\;=\;\text{Freezing point of solvent}
−  Freezing point of solution- \;\text{Freezing point of solution}
4.801  =273.15 K−  Freezing point of solution4.801\;=273.15\,\mathrm{K}-\;\text{Freezing point of solution}
  Freezing point of solution    =273.15 K−4.801 K\;\text{Freezing point of solution}\;\;=273.15\,\mathrm{K}-4.801\,\mathrm{K}
=268.35 K=268.35\,\mathrm{K}
Thus, the freezing point of the glucose solution is 268.35 K268.35\,\mathrm{K}.
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