The reaction described by the equation O 3 ( g ) + NO ( g ) ⟶ O 2 ( g ) + NO 2 ( g ) O3(g)+NO(g)⟶O2(g)+NO2(g) has, at 310 K, the rate law rate of reaction = k [ O 3 ] [ NO ] k = 3.0 × 10 6 M − 1 ⋅ s − 1 rate of reaction=k[O3][NO]k=3.0×106 M−1⋅s−1 Given that [ O 3 ] = 3.0 × 10 − 4 M [O3]=3.0×10−4 M and [ NO ] = 8.0 × 10 − 5 M [NO]=8.0×10−5 M at t = 0 , t=0, calculate the rate of the reaction?