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An aqueous solution of potassium sulfate (K2SO4) has a freezing point of –2.24 oC. What is its molality? (Kf = 1.86 oC•m–1)

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MissPhiladelphia
For the answer to the question above,
in this problem we can use the concept of freezing point depression since we are given the freezing point of the solution.

ΔT = -k(f) x m x i
-2.24 - 0 = -1.86 x m x 3
m = 0.4014
So the answer to your question is m = 0.4014

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