The difference rate law for the reaction
`H_(2) +I_(2) to 2HI` is

For the reaction 2HI hArr H_(2)+I_(2)

On a given condition, the equilibrium concentration of H, H_(2) and I_(2) are 0.80 , 0.10 and 0.10 mole/litre. The equilibrium constant for the reaction H_(2) + I_(2) hArr 2HI will be

Deduce the rate law for the converison of H_(2) and I_(2) to HI at 440^(@)C corresponding to the following proposed mechanism: step I: I_(2) hArr 2I ("fast") (k_(1)) Step II: I+H_(2) hArr IH_(2) ("fast") (k_(2)) Step III: IH_(2) + I rarr 2HI (slow) (k)

Equilibrium concentration of HI, I_(2) and H_(2) is 0.7, 0.1 and 0.1 M respectively. The equilibrium constant for the reaction, I_(2)+H_(2)hArr 2HI is :