Solubility: The maximum amount of solute that can be dissolved in the solvent at equilibrium is defined as solubility.

Constant of soluble product: For equilibrium between solids and their respective ions in a solution, the solubility product constant is defined. In general, the term "solubility product" refers to water-equilibrium insoluble or slightly soluble ionic substances.

Considering the given information:

The following is the reaction:

${\text{I}}_{\text{2}}{\text{(g)+C}}_{\text{2}}\text{(g)}\rightleftharpoons \text{2ICl(g)}$

Calculate the change in Gibb's free energy at 298k by using the following formula:

Gibbs free energy equation is ${\text{ΔG}}_{\text{rxn}}^{\text{°}}\text{=}\sum \text{m}{{\text{ΔG}}_{\text{f}}}^{\text{°}}\text{(Products)-}\sum \text{n}{{\text{\hspace{0.17em}DeltaG}}_{\text{f}}}^{\text{°}}\text{(Reactants)}$

${\text{ΔG}}_{\text{rxn}}^{\text{o}}$ Formation of values,

 $\begin{array}{c}{\text{I}}_{\text{2}}\text{(g)=19.37kJ/mol}\\ {\text{Cl}}_{\text{2}}\text{(g)=0 kJ/mol}\\ \text{ICl(g)=-6.075kJ/mol}\end{array}$

The reaction's free energy change is calculated as follows:

$\begin{array}{l}{\text{ΔG}}_{\text{rxn}}^{\text{°}}\text{=}\left[\text{(2 molICl)}\left({\text{ΔG}}_{\text{f}}^{\text{o}}\text{ of ICl}\right)\right]\text{-}[\left({\text{1molI}}_{\text{2}}\right)\left({\text{ΔG}}_{\text{f}}^{\text{o}}{\text{ of I}}_{\text{2}}\right)\text{+}\left({\text{1 molCl}}_{\text{2}}\right)\left({\text{ΔG}}_{\text{f}}^{\text{o}}{\text{ of Cl}}_{\text{2}}\right)]\\ {\text{ΔG}}_{\text{rxn}}^{\text{°}}\text{=[(2 molICl)(-6.075 kJ/mol)]-}[\left({\text{1 molI}}_{\text{2}}\right)\text{(19.38 kJ/mol)}\text{+}\left({\text{1 molCl}}_{\text{2}}\right)\text{(0 kJ/mol)}]\\ {\text{ΔG}}_{\text{rxn }}^{\text{°}}\text{=-31.53 kJ}\end{array}$

The value of  ${\text{ΔG}}_{\text{rxn}}^{\text{o}}$ is -31.53kJ and these value of ${\text{ΔG}}_{\text{f}}^{\text{o}}$ are referred from the Appendix B.

K, the equilibrium constant, is calculated.

We are aware of the equilibrium equation.

${\text{ΔG=ΔG}}^{\text{o}}\text{+RTln(K)}$

Rearrange the equation above,

$\begin{array}{c}{\text{lnK}}_{\text{p}}\text{=-}\frac{{\text{ΔG}}^{\text{°}}}{\text{RT}}\\ \text{=}\left(\frac{\text{-31.53 kJ/mol}}{\text{-(8.314 J/mol×K)(298 K)}}\right)\left(\frac{{\text{10}}^{\text{3}}\text{ J}}{\text{1 kJ}}\right)\\ {\text{lnK}}_{\text{p}}\text{=12.726169 }\\ {\text{K}}_{\text{p}}{\text{=e}}^{\text{12.726169}}\\ {\text{K}}_{\text{p}}{\text{=3.3643794×10}}^{\text{5}}\text{ (or) }\\ {\text{K}}_{\text{p}}{\text{=3.36×10}}^{\text{5}}\end{array}$

Therefore, the standard equilibrium K_p value is $\underset{\_}{{\text{3.36×10}}^{\text{5}}}$