Question

step Suppose the reaction between nitric oxide and oxygen proceeds by the following mechanism: elementary reaction rate const
0 0
Add a comment Improve this question Transcribed image text
Answer #1

First step is slow step so it is rate determining step.

a)Balanced overall reaction

2NO(g) + O2(g)--> 2NO2(g)

b) rate = k[NO][O2]

Add a comment
Know the answer?
Add Answer to:
step Suppose the reaction between nitric oxide and oxygen proceeds by the following mechanism: elementary reaction...
Your Answer:

Post as a guest

Your Name:

What's your source?

Earn Coins

Coins can be redeemed for fabulous gifts.

Not the answer you're looking for? Ask your own homework help question. Our experts will answer your question WITHIN MINUTES for Free.
Similar Homework Help Questions
  • Suppose the reaction between nitric oxide and oxygen proceeds by the following mechanism: rate constant elementary...

    Suppose the reaction between nitric oxide and oxygen proceeds by the following mechanism: rate constant elementary reaction step NO(g)+ 02(g) NO2(9) 0(g) 1 NO(g) O(g) NO2(9) k2 2 Suppose also k,»k,. That is, the first step is much faster than the second. 2* Write the balanced chemical equation for the overall chemical reaction: Write the experimentally observable rate law for the overall chemical reaction rate k Note: your answer should not contain the concentrations of any intermediates. Express the rate...

  • Suppose the synthesis of ethylene dichloride proceeds by the following mechanism: step rate constant elementary reaction...

    Suppose the synthesis of ethylene dichloride proceeds by the following mechanism: step rate constant elementary reaction CH,CH, (g)+ci, (g) → CH,CH,ci* (g)+ciº (9) CH,CH,CI* (g)+C1 (g) → CH,CH,C1, (g) Suppose also kq «k2. That is, the first step is much slower than the second. Write the balanced chemical equation for the overall chemical reaction. Write the experimentally- observable rate law for the overall chemical reaction. Note: your answer should not contain the concentrations of any intermediates. rate = % 0

  • — O KINETICS AND EQUILIBRIUM Writing the rate law implied by a simple mechanism Suppose the...

    — O KINETICS AND EQUILIBRIUM Writing the rate law implied by a simple mechanism Suppose the formation of nitrosyl chloride proceeds by the following mechanism: step elementary reaction rate constant 1 NO(g) + Cl2(9) ► NOCI (9) km 2 NOCI (9) + NO(g) → 2 NOCI (9) kz Suppose also k«k. That is, the first slower than the second 0-0 Write the balanced chemical equation for the overall chemical reaction: Write the experimentally- observable rate law for the overall chemical...

  • Can check my answrs as well if it's correct and help me out with the last...

    Can check my answrs as well if it's correct and help me out with the last part of the question. Suppose the decomposition of dinitrogen monoxide proceeds by the following mechanism: step elementary reaction rate constant ki N2O(g) → N2(9) + O(g) 2 N2O(g) + 0(g) N2(g) + O2(9) k Suppose also k,«k2. That is, the first step is much slower than the second. Write the balanced chemical equation for the overall chemical reaction: 2N 0(3) 2N, (g) + 02...

  • Step 1: NO(g) + O2(g) ---> NO2(g) + O(g) rate= k1 Step 2: NO(g) + )...

    Step 1: NO(g) + O2(g) ---> NO2(g) + O(g) rate= k1 Step 2: NO(g) + ) --> NO2 (g) rate = k2 suppose that k1<<k2, That is the first step is much slower than the second. Write the balanced chem equation for the overall chemical rxn Write the experimentally observable rate law for the overall reaction. (no reaction concentrations) rate=k() Express the rate constant k for the overall reaction in terms of k1, k2 and (if necessary) the rate constant...

  • The reaction between nitric oxide (nitrogen monoxide) and oxygen gives nitrogen dioxide according to the stoichiometric...

    The reaction between nitric oxide (nitrogen monoxide) and oxygen gives nitrogen dioxide according to the stoichiometric equation. 2 NO(g) 02(g)2 NO2(g) 1. Write the rate law expected if the reaction was found to occur in a single step The reaction is observed to be complex with the following mechanism is proposed: 2 NO N202 N202 2 NO N202 +02 → 2NO2 k2 kı k. -1 2. Use the steady state approximation to obtain the expression for the formation of NO2....

  • The gas phase reaction of nitric oxide, NO, with bromine, Br2, to produce nitrosyl bromide, NOBr,...

    The gas phase reaction of nitric oxide, NO, with bromine, Br2, to produce nitrosyl bromide, NOBr, occurs according to the net reaction: A possible reaction mechanism is: ?1 Step 1: 2 NO ⇌ N2O2 ?−1 Step 2: N2O2 + Br2 2NO+Br2 → 2NOBr 2 NOBr Neither step is faster than the other. What is the order of the overall reaction, and what is the overall rate constant (expressed in terms of the individual rate constants for the elementary steps)? 9....

  • 1A. The decomposition of dinitrogen monoxide (nitrous oxide) occurs in two steps. The mechanism that has...

    1A. The decomposition of dinitrogen monoxide (nitrous oxide) occurs in two steps. The mechanism that has been proposed is as follows: Step 1: N2O (g) à N2(g) + O(g) Step 2: N2O (g) + O(g) à N2(g) + O2(g) Write the chemical equation for the overall reaction and identify any reaction intermediates (spectators). What is the molecularity of each of the elementary (steps) reactions?

  • 1. For the reaction of nitric oxide (NO) and oxygen to form nitrogen dioxide, if molecular...

    1. For the reaction of nitric oxide (NO) and oxygen to form nitrogen dioxide, if molecular oxygen is reacting at the rate of 0.00072 M/s, what is the rate (in M/s) of nitric oxide reacting? 2. For the reaction of nitric oxide (NO) and oxygen to form nitrogen dioxide, if molecular oxygen is reacting at the rate of 0.00697 M/s, what is the rate (in M/s) of nitrogen dioxide being formed?

  • The reaction between nitric oxide (NO) and chlorine (Cl2) to form nitrosyl chloride (NOCl) was found...

    The reaction between nitric oxide (NO) and chlorine (Cl2) to form nitrosyl chloride (NOCl) was found to occur as an elementary reaction as follows: 2 NO (g) + Cl2 (g) à  2 NOCl (g) A table of the concentrations and initial rates data is shown below: [ NO ]0 (M)                 [ Cl2 ]0 (M)                  rate = - D[Cl2]/ Dt  (M / min) Run 1                    0.10                             0.10                                   0.18 Run 2                    0.10                             0.20                                   0.36 Run 3                    0.20                             0.20                                   1.44 The order for Cl2 in this reaction is: (a)  1                            (b)  45                         (c)  2                            (d)  180

ADVERTISEMENT
Free Homework Help App
Download From Google Play
Scan Your Homework
to Get Instant Free Answers
Need Online Homework Help?
Ask a Question
Get Answers For Free
Most questions answered within 3 hours.
ADVERTISEMENT
ADVERTISEMENT
ADVERTISEMENT