Calculate entropy change for vaporization of 1 mole of liquid water to steam at $100^{\circ} C$ if $Δ H_{v}$ =40.8 kJ $m o l^{- 1}$ .

$Δ S_{v} = 107.38 J K^{- 1} m o l^{- 1}$

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$Δ S_{v} = 109.48 J K^{- 1} m o l^{- 1}$

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$Δ S_{v} = 109.38 J K^{- 1} m o l^{- 1}$

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$Δ S_{v} = 107.38 J K^{- 1} m o l^{- 1}$

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Solution

The correct option is C
$Δ S_{v} = 109.38 J K^{- 1} m o l^{- 1}$

For entropy change of vaporization can be given as, $Δ S_{v} = Δ \frac{H_{v}}{T}$
Given values are, $Δ H_{v} = 40.8 \times 10^{3} J m o l^{- 1}$ ; T=373K
Therefore $Δ S_{v} = (40.8 \times \frac{10^{3}}{373})$
$Δ S_{v} = 109.38 J K^{- 1} m o l^{- 1}$

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Calculate entropy change for vaporization of 1 mole of liquid water to steam at $100^{\circ} C$ if $Δ H_{v}$ =40.8 kJ $m o l^{- 1}$ .

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