The oxidation of nitric oxide shows the following characteristic
Stoichiometry: 2NO + O2
2NO2
Rate Equation: d[NO2] / dt = k3[NO]2[O2]
NO + O2
NO3 ---------- (1)
NO3 + NO
2NO2----------(2)
I. Show that this mechanism is consistent with:
a. the observed reaction stoichiometry
b. the experimental equation
II. what experiment would you carry out to check the validity of the proposed mechanism
III. why is it unlikely that the reaction would be single step
Answers: this is how far i got with my answers but i have no idea is im right or wrong.
I.a. there is more then 1step in this reaction
I.b) d[NO2] / dt = k3[NO]2[O2] therefore 1/2 d[NO2] / dt = k2[NO3][NO] and because the NO3 is an intermeditae it need to be eliminated this can be done by using the steady state assumption
III. does this have something to do with the molecularity
Thank you