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प्रश्न
The molal freezing point constant for water is 1.86. If 342 g of cane sugar is dissolved in 1000 g of water, the solution will freeze at ______.
विकल्प
1.86°C
−1.86°C
−3.92°C
3.92°C
MCQ
रिक्त स्थान भरें
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उत्तर
The molal freezing point constant for water is 1.86. If 342 g of cane sugar is dissolved in 1000 g of water, the solution will freeze at −1.86°C.
Explanation:
Given: Mass of solute (cane sugar) = 342 g
Molar mass of cane sugar (C12H22O11) = 342 g/mol
Mass of water (solvent) = 1000 g = 1 kg
Molality (m) = `"Mass of solute"/("Molar mass" xx "Mass of solvent in kg")`
= `342/(342 xx 1)`
Molality (m) = 1 mol/kg
Freezing point depression constant (Kf) = 1.86 K kg/mol
Freezing point of pure water = 0°C
ΔTf = Kf m
= 1.86 × 1
= 1.86°C
Freezing point = 0°C − 1.86°C
= −1.86°C
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