Given reaction rate data for: H2O2 + 31 + 2H* → 13¯ + 2H2O Trial [H2O2] M [H'] M Rate (M/s) [l'] M 0.010 0.010 0.020 0.010 0.010 0.00050 1.15 x 106 2.30 x 106 2.30 x 106 1.15 x 106 1 2 3 0.020 0.010 0.010 0.00050 0.00050 0.00100 4 Write the rate law for the reaction. O a. Rate = k[H2O2][I* ]?[H¯ ] O b. Rate = k[H2O2][I* ] O c. Rate = k[H2O2]²[I* ][H° ] O d. Rate = k[H2O2][I* ][H° ] O e. Rate = k[H2O2]°[I* ]
Given reaction rate data for: H2O2 + 31 + 2H* → 13¯ + 2H2O Trial [H2O2] M [H'] M Rate (M/s) [l'] M 0.010 0.010 0.020 0.010 0.010 0.00050 1.15 x 106 2.30 x 106 2.30 x 106 1.15 x 106 1 2 3 0.020 0.010 0.010 0.00050 0.00050 0.00100 4 Write the rate law for the reaction. O a. Rate = k[H2O2][I* ]?[H¯ ] O b. Rate = k[H2O2][I* ] O c. Rate = k[H2O2]²[I* ][H° ] O d. Rate = k[H2O2][I* ][H° ] O e. Rate = k[H2O2]°[I* ]
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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Question
![Given reaction rate data for: H2O2 + 31 + 2H* → I3 ¯ + 2H2O
Trial
[H2O2] M
[I'] M
[H'] M
Rate (M/s)
0.010
0.00050
0.00050
0.00050
0.00100
1.15 x 106
2.30 x 106
2.30 x 106
1.15 x 106
1
2
0.010
0.020
0.010
0.010
0.010
0.020
0.010
4
Write the rate law for the reaction.
O a. Rate = k[H2O2][I* ]?[H¯ ]
O b. Rate = k[H2O2][I* ]
O c. Rate = k[H2O2]²[I" ][H° ]
O d. Rate = k[H2O2][l¯ ][H° ]
O e. Rate = k[H>O21²[I" ]](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2Fa9558c6b-c0eb-48ec-a83a-6eb9b2afd211%2Fc38dcf80-bc59-44dd-b1ed-0695ce1a75c3%2Fp0u1tm8_processed.png&w=3840&q=75)
Transcribed Image Text:Given reaction rate data for: H2O2 + 31 + 2H* → I3 ¯ + 2H2O
Trial
[H2O2] M
[I'] M
[H'] M
Rate (M/s)
0.010
0.00050
0.00050
0.00050
0.00100
1.15 x 106
2.30 x 106
2.30 x 106
1.15 x 106
1
2
0.010
0.020
0.010
0.010
0.010
0.020
0.010
4
Write the rate law for the reaction.
O a. Rate = k[H2O2][I* ]?[H¯ ]
O b. Rate = k[H2O2][I* ]
O c. Rate = k[H2O2]²[I" ][H° ]
O d. Rate = k[H2O2][l¯ ][H° ]
O e. Rate = k[H>O21²[I" ]
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