Determine the amount of `CaCl(i=2.47)` dissolved in `2.5L` of water such that its osmotic pressure is `0.75atm ` at `27^(@)C`.

Determine the amount of `CaCl(i=2.47)` dissolved in `2.5L` of water su

1.	Determine the amount of `CaCl(i=2.47)` dissolved in `2.5L` of water such that its osmotic pressure is `0.75atm ` at `27^(@)C`.
Answer» We know that, `pi = i(n)/(V) RT` `rArr pi =i(w)/(MV) RT rArr w = (piMV)/(iRT)` `pi = 0.75 atm` `V = 2.5 L` `i= 2.47` `T =(27 +273)K = 300 K` Here, `R =0.082L atm K^(-1)mol^(-1)` `M = 1 xx 40 +2 xx 35.5 = 111g mol^(-1)` Therefore, `w = (0.75 xx 111 xx 2.5)/(2.47 xx 0.0821 xx 300) = 3.42g` Hence, the required amount of `CaCI_(2)` is `3.42g`.

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Determine the amount of `CaCl(i=2.47)` dissolved in `2.5L` of water such that its osmotic pressure is `0.75atm ` at `27^(@)C`.

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