The freezing point depression of a `0.109M` aq. Solution of formic acid is `-0.21^(@)C`. Calculate the equilibrium constant for the reaction, `HCOOH (aq) hArr H^(+)(aq) +HCOO^(Theta)(aq)` `K_(f)` for water `= 1.86 kg mol^(-1)K`

The freezing point depression of a `0.109M` aq. Solution of formic aci

1.	The freezing point depression of a `0.109M` aq. Solution of formic acid is `-0.21^(@)C`. Calculate the equilibrium constant for the reaction, `HCOOH (aq) hArr H^(+)(aq) +HCOO^(Theta)(aq)` `K_(f)` for water `= 1.86 kg mol^(-1)K`
Answer» Correct Answer - `1.44 xx 10^(-4)` `DeltaT_(f) = (1 - alpha) k_(f) xx m` `0.21 = (1+alpha) xx 1.86 xx 0.109` `1 +alpha = 1.0358` `k_(a) = (Calpha^(2))/(1-alpha) = (1.109(0.0358)^(2))/(1-0.0358) = 1.44 xx 10^(-4)`

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The freezing point depression of a `0.109M` aq. Solution of formic acid is `-0.21^(@)C`. Calculate the equilibrium constant for the reaction, `HCOOH (aq) hArr H^(+)(aq) +HCOO^(Theta)(aq)` `K_(f)` for water `= 1.86 kg mol^(-1)K`

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