A) The following data were collected for the rate of disappearance of NO in the reaction:
2 NO(g) + O2(g) = 2 NO2(g)
| Experiment | [NO] | [O2] | initial rate |
| 1 | 0.0126 M | 0.0125 M | 1.41 * 10-2M/s |
| 2 | 0.0252 M | 0.0125 M | 5.64 * 10-2M/s |
| 3 | 0.0750 M | 0.0100 M | 4.00 * 10-1M/s |
What is the rate law and the rate constant for this reaction?
B)What is the initial rate of disappearance of NO ion in experiment 2 of the previous problem?
A) The following data were collected for the rate of disappearance of NO in the reaction:...
The following data were collected for the rate of disappearance ofNO in the reaction 2NO(g) + O2 --> 2NO2(g) : Experiment [NO] (M) [O2] (M) Initial Rate (M/s) 1 0.0126 0.0125 1.41 x 10-2 2 0.0252 0.0125 5.64 x 10-2 3 0.0252 0.0250 1.13 x 10 -1 (a) What is the rate law for the reaciton? (B) What are teh unitsof the rate constant? (c) What is the average value of the rateconstant calculated form teh three data sets? (d)...
2NO(g)+O2(g)→2NO2(g) For the above reaction, the following data were collected for the rate of disappearance of NO in the reaction: Experiment [NO] (M) [O2] (M) Initial Rate (M/s) 1 0.0126 0.0125 1.41×10−2 2 0.0252 0.0250 1.13×10−1 3 0.0252 0.0125 5.64×10−2 Part A: What are the units of the rate constant? a) s−1 b) M−1s−1 c) M−2s−1 d) M−3s−1 Part B: What is the rate of disappearance of NO when [NO]=0.0725 and [O2]=0.0100? Express the rate in molarity per second to...
Using The Following Data, Determine the Rate Law For The Reaction. Part A. 2NO(g)+O(g) --> 2NO2(g) Experiment [NO] [O2] Initial Rate (M/s] 1 0.0126 0.0125 1.41x10^-2 2 0.0252 0.0250 1.13x10^-1 3 0.0252 0.0125 5.64x10^-2 Part B. S2O8charge2-(ag)+3 I charge 1-(aq) ----> 2SO4charge2-(aq)+I3charge1-(aq) Experiment [S2O8charge2-] [ I charge1-] Initial Rate (M/s) 1 0.023 0.048 6.8x10^-6 2 0.054 0.048 1.6x10^-5 3 0.054 0.019 6.3x10^-6
Consider the reaction of peroxydisulfate ion (S2O8^2-)(Aq) with iodide ion (I-) in aqueous solution: (S2O8^2-)(Aq)+(3I-)(Aq)---->2SO4^2-+(I3-)(Aq).At a particular temperature the rate of disappearance of S2O8^2 varies with reactant concentrations in the following manner:Experiment S2O8^2- I- Initial Rate1 0.018 0.036 2.6x10^-62 0.027 0.036 3.9x10^-63 0.036 0.054 7.8x10^-64 0.050 0.072 1.4x10^-51) Determine the rate law for the reaction.Apparently the rate law is Rate=[S2O8^2-][I-]How did they come up with this?2)How is the rate of disappearance ofS2O8^2- related to the rate of disappearance of [I-]...
please help and answer all 3 parts
Name Date 21. Rate data were collected for the following reaction at a temperature 2NO(g) + O3(g) → 2 NO: (g) Rate data have been determined at a particular temperature for the reaction in which all reactants and products are gases. Experiment # Initial [NO] 0.0125 M 0.0250M 0.0125M Initial [0] 0.0253 M 0.0253 M 0.0506M Initial Rate (M/s) 2.81 x 102 1.12 x 10- 5.62 x 102 Caleulate the order of the...
The following data were collected in two studies of the reaction below. A + 2B → C + D Time(s) Experiment #1 [A] (M) Experiment #2 [A] (M) 0 10.0 x 10-2 10.0 x 10-2 20 6.67 x 10-2 5.00 x 10-2 40 5.00 x 10-2 3.33 x 10-2 60 4.00 x 10-2 2.50 x 10-2 80 3.33 x 10-2 2.00 x 10-2 100 2.86 x 10-2 1.67 x 10-2 120 2.50 x 10-2 1.43 x 10-2 In Experiment #1,...
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Determine the rate law for the reaction and calculate the rate constant Experiment [NO]. [O2). Initial rate ignore this |(M/s) column 1 0.0235 0.0125 7.98E-3 2 0.0235 0.0250 15.9E-3 3 0.0470 0.0125 32.0E-3 4 0.0470 0.0250 63.5E-3
1. Consider the following kinetic data, collected at 25.0°C, for the reaction 2 NO(g+ Cl2 → 2NOCI Experiment INOJ (M) 0.0300 0.0150 0.0150 ICI (M) 0.0100 0.0100 0.0400 Rate (M/s) 3.4 x 10 8.5 x 10 3.4 x 10 a. What is the reaction order with respect to NO? b. What is the reaction order with respect to CIZ? c. What is the overall reaction order? d. Determine the value of the rate constant, k (round to 2 sig figs).
(2 points each a-f) The data below were collected for the following reaction: 2 NO2 (g) Cl2 (g) >2 NO2CI (g) Initial rate (M/s) [NO2] (M) [CI2 (M) 0.051 0.200 0.100 0.400 0.100 0.103 0.105 0.400 0.200 0.800 0.400 0.207 a. Calculate the order of the reaction with respect to NO2 (). b. Calculate the order of the reaction with respect to Cl2 (/). Write the Rate Law expression including the correct order of reaction for each reactant. c. d....
Consider the reaction: 2 NO(g) + O2 (g)--> 2 NO2 (g)
The following data were obtained from three experiments using
the method of initial rates:
3. Consider the reaction: 2 NO(g) + O2(g) → 2 NO2(g) The following data were obtained from three experiments using the method of initial rates: Initial [NO] Initial rate NO Initial [02] mol mol L-1 mol L-1 L-15-1 0.010 0.010 Experiment 1 Experiment 2 Experiment 3 0.020 0.010 2.5 x 10-5 1.0 x 10-4 5.0...