Consider the following reaction: + NH4' (aq) + NO2 (aq) → N2(g) + 2H2O(I) The rate law is given by the following equation. Rate = k [NH4"][NO2"] a. At a certain temperature, the rate constant is 2.80 x 10 -4 /M•s. Calculate the rate of the reaction at that temperature when [NH4"]= 0.26M and [NO2 ]= 0.23M b. From the above information, state the overall order of the reaction. 89 c. State what effect on the rate of reaction you would expect to see if you increased the temperature in this experiment. Briefly explain your reasoning. |

Chemistry
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Author:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
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Chapter1: Chemical Foundations
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Problem 1RQ: Define and explain the differences between the following terms. a. law and theory b. theory and...
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Consider the following reaction:
+
NH4" (aq) + NO2 (aq) → N2(g) + 2H2O(I)
The rate law is given by the following equation.
Rate = k [NH4"][NO2"]
a. At a certain temperature, the rate constant is 2.80 × 10
-4
/M•s. Calculate the rate of the reaction at
that temperature when [NH4"]= 0.26M and [NO2]=0.23M
b. From the above information, state the overall order of the reaction.
89
c. State what effect on the rate of reaction you would expect to see if you increased the temperature in
this experiment. Briefly explain your reasoning. |
Transcribed Image Text:Consider the following reaction: + NH4" (aq) + NO2 (aq) → N2(g) + 2H2O(I) The rate law is given by the following equation. Rate = k [NH4"][NO2"] a. At a certain temperature, the rate constant is 2.80 × 10 -4 /M•s. Calculate the rate of the reaction at that temperature when [NH4"]= 0.26M and [NO2]=0.23M b. From the above information, state the overall order of the reaction. 89 c. State what effect on the rate of reaction you would expect to see if you increased the temperature in this experiment. Briefly explain your reasoning. |
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