on 2 NO(g) + Cl2(g) --> 2 NOCI(g) given the following mechanism 1. NO(g) + Cl2(g) = NOCI2(g) 2. NOCI2(g) + NO(g) 2 NOCI(g) (slow) (fast, equilibrium) O A. rate = k[NO]?ICI2] / [NOCI] %3D O B. rate = k[NO]?{Cl2] %3D C. rate = k[NO][C2] D. rate = k[NOCIJ2 %3D A E rate = kINor?ICI2]/ [NOCIJ2 %3D

Chemistry
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Chapter12: Chemical Kinetics
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Problem 100AE: Consider a hypothetical reaction between A and B: A + B products Use the following initial rate...
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What is the rate law for the reaction 2 NO(g) + Cl2(g) --> 2 NOC(g) given the following mechanism:
1. NO(g) + Cl2(g) = NOCI2(g)
(fast, equilibrium)
2. NOCI2(g) + NO(g) 2 NOCI(g) (slow)
O A. rate = k[NOJ<ICI2] / [NOC]
OB. rate = k[NO]?{Cl2]
%3D
OC rate k[NO][Cl2]
O D. rate = k[NOCI]?
%3D
O E. rate = k[NOj?{Cl2]/ [NOC]?
Transcribed Image Text:What is the rate law for the reaction 2 NO(g) + Cl2(g) --> 2 NOC(g) given the following mechanism: 1. NO(g) + Cl2(g) = NOCI2(g) (fast, equilibrium) 2. NOCI2(g) + NO(g) 2 NOCI(g) (slow) O A. rate = k[NOJ<ICI2] / [NOC] OB. rate = k[NO]?{Cl2] %3D OC rate k[NO][Cl2] O D. rate = k[NOCI]? %3D O E. rate = k[NOj?{Cl2]/ [NOC]?
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