Question

What is the molar entropy change for the freezing of water at 0degrees celsius? The enthalpy of fusion of water is 333.5J/g.

Answer 1

For freezing at the normal freezing point, there is a phase equilibrium, so that `DeltaG_(fus) = 0`. Note that freezing is the opposite of what `DeltaH_(fus)` describes.

Therefore,

`cancel(DeltaG_(fus))^(0) = DeltaH_(fus) - TDeltaS_(fus)`

As a result,

`color(blue)(DeltaS_(f rz)) = -DeltaS_(fus) = -(DeltaH_(fus))/T`

`= (-"333.5 J/g")/("273.15 K") = color(blue)(-"1.22 J/g"cdot"K")`

Does this make physical sense? Freezing releases heat, so the entropy of the system decreases.