Question
Question: For vaporization of water a \[1\] atmospheric pressure, the values of \[\Delta H\] and \[\Delta S\] ...
For vaporization of water a 1 atmospheric pressure, the values of ΔH and ΔS are 40.63kJmol−1 and 108.8JK−1mol−1, respectively. The temperature when Gibb’s energy change (ΔG) for this transformation will be zero, is:
A 273.4K
B 393.4K
C 373.4K
D 293.4K
Solution
Gibbs free energy, also known as the Gibbs function, Gibbs energy, or free enthalpy, is a quantity that is used to measure the maximum amount of work done in a thermodynamic system when the temperature and pressure are kept constant. Gibbs free energy is a state function hence it doesn’t depend on the path. So change in Gibbs free energy is equal to the change in enthalpy minus the product of temperature and entropy change of the system. The equation is given below
ΔG=ΔH−TΔS,
ΔG=Change in Gibbs’ free energy
ΔH=Change in enthalpy
T=Change in temperature
ΔS=Change in entropy
Complete step by step answer:
Here, we have given that the values of change in enthalpy and entropy are 40.63kJmol−1 and 108.8JK−1mol−1 respectively. Also, given the change in Gibbs energy is equal to zero and we have to find the corresponding temperature for this reaction (vaporization of water).
So, we have to substitute these values in the equation, i.e. ⇒ΔG=ΔH−TΔS
Hence, we get;
0=ΔH−TΔS, so we can write it as
ΔH=TΔS
T=ΔSΔH