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QUESTION 2.20

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

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Solution

For cane sugar solution
Wb(sugar)=5g;WA(water)=1005=95gMB(sugar)=342 g mol1;ΔTf=(273.15271.00)K=2.15KΔTf=Kf×WBMB×WA(2.15K)=Kf×(5g)(342 g mol1)×(95g)(i)
For glucose solution
WB(glucose)=5g;WA(water)=1005=95gMB(glucose)=180 g mol1;ΔTf=?ΔTf=Kf×(5g)(180 g mol1)×(95g)(ii)
On dividing Eq. (ii) by Eq. (i)
ΔTf(2.15K)=Kf×(5g)(180 g mol1)×(95g)×(342 g mol1)×(95g)(Kf)×(5g)ΔTf=342×2.15180K=4.085K
Freezing point temperature for 5\% glucose solution
= (273.15 - 4.085)K = 269.07K


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