6. Na2SO4 is an electrolyte. The dissolution of Na2SO4 in water can be described
ID: 1076356 • Letter: 6
Question
6. Na2SO4 is an electrolyte. The dissolution of Na2SO4 in water can be described by the chemical equation given below Na2SO4 (s)-> 2Na + (aq) + SO42-(aq) a) Solution A is ade by dissolving completely 10.0 grams of Na2SO4 in 80.0 mL of deionized water. The density of water is 1.00 g/mL and the freezing point of water is 0.0 °C. What is the expected freezing point of solution A? b) Solution B is made by dissolving completely 18.0 grams of Na-SO in 80.0 mL of deionized water. What is the expected freezing point of solution B? r, 'Allah Ana has a hinher freezinq point? Explain why.Explanation / Answer
Q6)
a)
Molar mass of Na2SO4 = 23 * 2 + 32 + 4 * 16 = 142 gm/mol
Number of moles of Na2SO4 in 10 gms = Mass/molar mass = 10/142 = 0.07042 moles
Mass of solvent(water) = Volume of water * density of water = 80 mL * 1 gm/mL = 80 gms
molality of Na2SO4 = number of moles of solute/mass of solvent in Kg = (10/142)/(0.080) = 0.88028m
Depression in Freezing point = i * Kf * m
Kf = 1.86 C/m (constant value)
i value = 3 (since Na2SO4 dissociates into three ions,2 ions of Na+ and one ion of SO4(2-)]
Depression in Freezing Point = 3 * 1.86 * 0.88028 = 4.911C
Expected Freezing Point of solution = Actual Freezing Point - Depression in Freezing Point = 0 - 4.911 = -4.911C
b)
Molar mass of Na2SO4 = 23 * 2 + 32 + 4 * 16 = 142 gm/mol
Number of moles of Na2SO4 in 10 gms = Mass/molar mass = 18/142 = 0.12676 moles
Mass of solvent(water) = Volume of water * density of water = 80 mL * 1 gm/mL = 80 gms
molality of Na2SO4 = number of moles of solute/mass of solvent in Kg = (18/142)/(0.080) = 1.5845 m
Depression in Freezing point = i * Kf * m
Kf = 1.86 C/m (constant value)
i value = 3 (since Na2SO4 dissociates into three ions,2 ions of Na+ and one ion of SO4(2-)]
Depression in Freezing Point = 3 * 1.86 * 1.5845 = 8.841C
Expected Freezing Point of solution = Actual Freezing Point - Depression in Freezing Point = 0 - 8.841 = -8.841C
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