Current Attempt in Progress The following reaction is investigated to determine its rate law: 2NO(g) + 2H2(3) –→N2(3) + 2H2O(3) Experiments yielded the following results: Initial Concentrations (mol L-') Initial Rate of Formation of N, (mol L-s-) [NO] [H,1 0.40 x 10-4 0.30 x 10-4 1.0 x 10- 0.80 x 10-4 0.30 x 10-4 4.0 x 10- 0.80 x 10-4 0.60 x 10-4 8.0 x 10- What is the rate law for the reaction? O rate = k [NO][H2]? %3D O rate = k [NO]?[H2] %3! O rate = k [NO]?(H2]? O rate = k (NO][H2] %3D What is the value of the rate constant? k = i x 105 O Lmol 1s-1 O s1 O L'mol 3s1 O mol Ls-1 O L? mol-2s-1
Current Attempt in Progress The following reaction is investigated to determine its rate law: 2NO(g) + 2H2(3) –→N2(3) + 2H2O(3) Experiments yielded the following results: Initial Concentrations (mol L-') Initial Rate of Formation of N, (mol L-s-) [NO] [H,1 0.40 x 10-4 0.30 x 10-4 1.0 x 10- 0.80 x 10-4 0.30 x 10-4 4.0 x 10- 0.80 x 10-4 0.60 x 10-4 8.0 x 10- What is the rate law for the reaction? O rate = k [NO][H2]? %3D O rate = k [NO]?[H2] %3! O rate = k [NO]?(H2]? O rate = k (NO][H2] %3D What is the value of the rate constant? k = i x 105 O Lmol 1s-1 O s1 O L'mol 3s1 O mol Ls-1 O L? mol-2s-1
Chemistry
10th Edition
ISBN:9781305957404
Author:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
Publisher:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
Chapter1: Chemical Foundations
Section: Chapter Questions
Problem 1RQ: Define and explain the differences between the following terms. a. law and theory b. theory and...
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![Current Attempt in Progress
The following reaction is investigated to determine its rate law:
2NO(g) + 2H2(g) → N2(g) + 2H2O(g)
Experiments yielded the following results:
Initial Concentrations (mol L-1)
Initial Rate of Formation of N,
(mol L-s-)
[NO)
[H,1
0.40 x 10-4
0.30 x 10-4
1.0 x 10-
0.80 x 10-4
0.30 x 10-4
4.0 x 10-
0,80 x 10-4
0.60 x 10-4
8.0 x 10-
What is the rate law for the reaction?
O rate = k [NO][H2]²
O rate = k [NO]?[H2]
O rate = k (NO]?[H2]?
O rate = k (NO][H2]
What is the value of the rate constant?
k= i
x 105
O L mol 1s1
O s-1
O L³mol 3s1
O mol L1s-1
O L² mol-2s 1](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2F64ca9290-cde1-4afe-a5b3-7b6fef761b5a%2Feacce24d-4156-404d-b513-14a48bb4d608%2Ftinf3nb_processed.jpeg&w=3840&q=75)
Transcribed Image Text:Current Attempt in Progress
The following reaction is investigated to determine its rate law:
2NO(g) + 2H2(g) → N2(g) + 2H2O(g)
Experiments yielded the following results:
Initial Concentrations (mol L-1)
Initial Rate of Formation of N,
(mol L-s-)
[NO)
[H,1
0.40 x 10-4
0.30 x 10-4
1.0 x 10-
0.80 x 10-4
0.30 x 10-4
4.0 x 10-
0,80 x 10-4
0.60 x 10-4
8.0 x 10-
What is the rate law for the reaction?
O rate = k [NO][H2]²
O rate = k [NO]?[H2]
O rate = k (NO]?[H2]?
O rate = k (NO][H2]
What is the value of the rate constant?
k= i
x 105
O L mol 1s1
O s-1
O L³mol 3s1
O mol L1s-1
O L² mol-2s 1
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