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Q.KBr undergoes 80% dissociation in its 0.5 (M) aqueous solution. Calculate osmotic pressure of the solution at 27°C temperature. OR What is azeotropic mixture? Can it be considered as ideal solution? (1+1)

West Bengal WbchseWest Bengal HS (WBCHSE) Board 2019Subjective· 2mImportance★★★★★
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Using the van't Hoff factor for 80% dissociated KBr and π=iCRT\pi = iCRT, the osmotic pressure works out to about 22.17 atm.

KBr dissociates as KBr→K++Br−KBr \rightarrow K^+ + Br^-, giving n=2n = 2 ions per formula unit. For a degree of dissociation α=0.80\alpha = 0.80, the van't Hoff factor is:

i=1+α(n−1)=1+0.80(2−1)=1.80i = 1 + \alpha(n-1) = 1 + 0.80(2-1) = 1.80

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