QUESTION IMAGE
Question
a certain reaction is second order in n₂ and first order in h₂. use this information to complete the table below. round each of your answers to 3 significant digits.
| n₂ | h₂ | initial rate of reaction |
|---|---|---|
| 2.26 m | 0.396 m | m/s |
| 0.260 m | 9.40 m | m/s |
Step1: Determine the rate - law expression
The rate - law for the reaction is $r = k[\text{N}_2]^2[\text{H}_2]$. First, find the rate constant $k$ using the first set of data. Given $[\text{N}_2]=2.26\ M$, $[\text{H}_2]=1.08\ M$ and $r = 55.0\ M/s$.
Step2: Calculate the rate for the second row
For the second row, $[\text{N}_2]=2.26\ M$ and $[\text{H}_2]=0.396\ M$. Using the rate - law $r = k[\text{N}_2]^2[\text{H}_2]$ and $k = 9.91\ M^{-2}s^{-1}$.
Step3: Calculate the rate for the third row
For the third row, $[\text{N}_2]=0.260\ M$ and $[\text{H}_2]=9.40\ M$. Using the rate - law $r = k[\text{N}_2]^2[\text{H}_2]$ and $k = 9.91\ M^{-2}s^{-1}$.
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| $[\text{N}_2]$ | $[\text{H}_2]$ | initial rate of reaction |
|---|---|---|
| $2.26\ M$ | $0.396\ M$ | $20.0\ M/s$ |
| $0.260\ M$ | $9.40\ M$ | $6.30\ M/s$ |