Determine the freezing point of a solution containing 0.625 g of glucose (C6H12O6) dissolved in 102.8 g of water. (Freezing point of water = 273 K, Kf for water = 1.87 K kg mol-1, at. wt. C = 12, H = 1, O = 16)

हिंदी

Determine the Freezing Point of a Solution Containing 0.625 G of Glucose (C6h12o6) Dissolved in 102.8 G of Water. - Chemistry (Theory)

Determine the freezing point of a solution containing 0.625 g of glucose (C₆H₁₂O₆) dissolved in 102.8 g of water.

(Freezing point of water = 273 K, K_f for water = 1.87 K kg mol^-1, at. wt. C = 12, H = 1, O = 16)

योग

M_B = 180 U

ΔT_f = K_f. `("W"_"B" xx 1000)/("M"_"B" xx "W"_"A")`

`= (1.87 xx 0.625 xx 1000)/(180 xx 102.8)`

`= (1.87 xx 625)/(180 xx 102.8) "K" = 0.06 "K"`

T_f' = 273 - 0.06 = 272.94 K

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Relative Molecular Mass of Non-volatile Substances - Freezing Point Depression

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2016-2017 (March)

Q 2.a.i | 2 marks

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