An aqueous solution of an electrolyte A...

An aqueous solution of an electrolyte AB has b.pt of `101.08^(@)C`. The solute is 100% ionised ay b.pt of water. The f.pt of the same solution is `-1.80^(@)C`. Hence `AB(K_(b)//K_(f) = 0.3)`

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An aqueous solution of a solute AB has b.p of 101.08^(@)C (AB is 100% ionised at boiling point of the solution ) and freezes at -1.80^(@)C . Hence , AB ( K_(b) //K_(f) = 0.3) :

An aqueous solution of a solute AB has b.p. of 101.08^(@)C( AB is 100% ionised at boiling point of the solution ) and freezes at -1.80 ^(@)C . Hence, AB(K_(b)//K_(f)=0.3)

0.1 molal aqueous solution of an electrolyte AB_(3) is 90% ionised. The boiling point of the solution at 1 atm is ( K_(b(H_(2)O)) = 0.52 kg " mol"^(-1) )

1.0 molal aqueous solution of an electrolyte X_(3)Y_(2) is 25% ionised . The boiling point of the solution is : ( K_(b) for H_(2)O = 0.52K kg/mol)

An aqueous solution boils at 101^(@)C . What is the freezing point of the same solution? (Gives : K_(f) = 1.86^(@)C// m "and" K_(b) = 0.51^(@)C//m )

An aqueous solution of an electrolyte AB has b.pt of `101.08^(@)C`. The solute is 100% ionised ay b.pt of water. The f.pt of the same solution is `-1.80^(@)C`. Hence `AB(K_(b)//K_(f) = 0.3)`

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