Question

For the reaction$\mathrm{A}\left(\mathrm{I}\right)\to 2\mathrm{B}\left(\mathrm{g}\right)∆\mathrm{U}=2.1\mathrm{kcal},∆\mathrm{S}=20\mathrm{cal}{\mathrm{K}}^{-1}$at $300\mathrm{K}$, Hence $∆\mathrm{G}$ in $\mathrm{kcal}$ is

Answer 1

Step 1:

$∆\mathrm{H}=∆\mathrm{U}+∆{\mathrm{n}}_{\mathrm{g}}\mathrm{RT}$

Step 2:

$$\begin{gathered} ∆\mathrm{H}=2100+(2\times 2\times 300)(\mathrm{R}=2\mathrm{cal}{\mathrm{K}}^{-1}{\mathrm{mol}}^{-1}) \\ =3300\mathrm{cal} \end{gathered}$$

Step 3:

$$\begin{gathered} ∆\mathrm{G}=∆\mathrm{H}–\mathrm{T}∆\mathrm{S} \\ ∆\mathrm{G}=3300–(300\times 20) \\ =-2.7\mathrm{kcal}. \end{gathered}$$

Therefore, $∆\mathrm{G}$ is $-2.7\mathrm{kcal}$.