Using the following data, determine the rate law and calculate k:
rate = k[F2]x[ClO2]y
|
Experiment |
[F2] (M) |
[ClO2] (M) |
Initial rate (M/s) |
|
1 |
0.40 |
0.05 |
1.2 M/s |
|
2 |
0.20 |
0.10 |
0.60 M/s |
|
3 |
0.40 |
0.10 |
2.4 M/s |

Using the following data, determine the rate law and calculate k: rate = k[F2]x[ClO2]y Experiment [F2]...
Table 13.2 Rate Data for the Reaction Between F2 and ClO2 [F2] (M) [CIO2] (M) 1.0.10 2. 0.10 3. 0.20 0.010 0.040 0.010 Initial Rate (M/s) 1.2 x 10-3 4.8 x 10-3 2.4 x 10-3 13.14 Use the data in Table 13.2 to calculate the rate of the reaction at the time when [F2] = 0,010 M and [C102] = 0.020 M.
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need help with #3 please
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