Answer to Question #283605 in Physical Chemistry for dilla

Part A

The intermediate is "I"

PART B

The slowest elementary step is

"H_2+2I\\to\\>2HI"

Which is the rate - determining step

If this reaction occured in a single step

Its law would be

Rate "=K_2[I]^2[H_2].........(i)"

Considering equilibrium between

"I_2\\>and\\>2I"

The rate of forward reaction will be equal to the rate of the reverse reaction.

"K_1\\>\\>[I_2]=K_{-1}\\>\\>[I]^2......(ii)"

"[I]^2=\\frac{K_1}{K_{-1}}\\>[I_2].......(iii)"

Substituting "(iii)\\>in\\>(ii)"

Rate "=K_2(\\frac{K_1}{K_{-1}}\\>[I_2])\\>\\>[H_2])"

"=K[H_2]\\>[I_2]"