To `500 cm^(3)` of water, `3 xx 10^(-3) kg` of acetic acid is added. If `23%` of axcetic acid is dissociated wha will be the depression in freezing point? `K_(f)` and density of water are `1.86 K kg^(-1) mol^(-1)` and `0.997 g cm^(-3)` respectively.

Weight of water `=500xx0.997=498.5g`
No. of moles of acetic acid =("Wt. of" CH_(3)COOH("in" gm))/("mol.wt.of" CH_(3)COOH)=(3xx10^(-3)xx10^(3))/(60)=0.05`
Since `498.5g` of water has `0.05` moles of `CH_(3)COOH`
`1000g` of water has `=(0.05xx1000)/(498.5)=0.1`
Determination of van't Hoff factor, `i`
`CH_(3)COOHrarrCH_(3)COO^(-)+H^(+)`
`{:("No of moles at start",1,0,0),("No. of moles at equb.",1-0.23,0.23,0.23):}`
`DeltaT_(f)=(1-0.23+0.23+0.23)xx1.86xx0.1=0.228K`.