If the boiling point increases by $"0.126 K"$ for a solution of a nonelectrolyte in benzene, what molality was required? $K_b = "2.52 K" cdot "kg/mol"$ .

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If the boiling point increases by $"0.126 K"$ for a solution of a nonelectrolyte in benzene, what molality was required? $K_b = "2.52 K" cdot "kg/mol"$ .

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Answer 1 · 2017-06-23T18:23:59

We assume the process is at $"1 atm"$ , where the normal boiling point would have been $80.1^@ "C"$ . But since we're given $DeltaT_b$ , we don't need to use that.

The boiling point elevation is given by

$DeltaT_b = T_b - T_b^"*" = iK_bm$ ,

where:

$T_b$ is the boiling point.

$"*"$ indicates the pure solvent.

$i$ is the van't Hoff factor, i.e. the effective number of particles per dissociated formula unit.

$K_b = "2.52 K/m"$ is the boiling point elevation constant.

$m$ is the molality in $"mol solute/kg solvent"$ .

Benzene is the solvent to this nonelectrolyte. So, the molality is given by

$color(blue)(m) = (DeltaT_b)/(iK_b)$

$~~ (0.126 cancel"K")/(1cdot2.52 cancel"K"cdot"kg/mol")$

$~~$ $color(blue)("0.05 mol/kg")$

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If the boiling point increases by $"0.126 K"$ for a solution of a nonelectrolyte in benzene, what molality was required? $K_b = "2.52 K" cdot "kg/mol"$ .

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Humanities

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If the boiling point increases by "0.126 K""0.126 K" for a solution of a nonelectrolyte in benzene, what molality was required? K_b = "2.52 K" cdot "kg/mol"K_b = "2.52 K" cdot "kg/mol".

1 Answer

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Impact of this question

If the boiling point increases by $"0.126 K"$ for a solution of a nonelectrolyte in benzene, what molality was required? $K_b = "2.52 K" cdot "kg/mol"$ .