13. For the following reaction: A P experimental kinetic data show that the overall reaction order is one-half. And 500...
Use the following data to determine the order of reaction with respect to each reactant and the overall order: A + 5B + 6C + 3D + 3E Experiment [A] (M) [B] (M) [C] (M) -4 1 0.35 0.35 0.35 2 0.70 0.35 0.35 Initial Rate (M/s) 8.0 x 10 3.2 x 10-3 6.4 x 10-3 3.2 x 10-3 3 0.70 0.70 0.35 4 0.70 0.35 0.70 1) Order with respect to A = 2) Order with respect to B...
1. For the reaction, CO, (g) 4 H2 (g) measured: CH4 (g) 2 HO (g), the following kinetic data are HJ 0.00500 M 0.00500 M 0.00250M 0.0100 M CO.] 0.00250 M 0.00750 M 0.00750 M 0.00250 M Temperature 500 K 500 K 500 K 450 K Rate 5.2 x 10 M/s 1.6 x 103 M/s 2.1 x 104 M/s 2x 10 M/s Based on this data, a) determine the rate law for the reaction (4 pts), b) calculate the rate...
B1. The following experimental data were obtained for the following reaction at 1000 K: 2 NO(g) + O2(g) 2 NO2(g) NOI (mol L OJ (mol L- Inital rate of reaction (mol L-'s - 0.0100 0.0200 0.0300 0.0200 0.0500 0.0200 3.02 x 10-5 3.02 x 10-4 2.72 x 10-4 (a) Determine the order of the reaction for each reactant (b) Determine the overall order of the reaction. Answer: (c) Calculate the rate constant at this temperature.
13) Give the characteristic of a second order reaction having only one reactant A) The rate of the reaction is not proportional to the concentration of the reactant. B) The rate of the reaction is proportional to the natural logarithm of the concentration of the reactant C) The rate of the reaction is proportional to the square root of the concentration of the reactant D) The rate of the reaction is directly proportional to the concentration of the reactant. E)...
Work set 2 Using the experimental data given in the table, determine the reaction order on each reactant and compute the overall rate of the following chemical reaction: NO2CI(g)+3 CO (g) ->NO (g) + 3 CO2(g) Rate (mol/L-s) Exp. Run [NO2](M) [COJ(M) 0.10 0.0021 1 0.10 0.0082 0.20 0.10 3 0.0083 0.033 0.20 0.20 4 0.10 0.40
#5 & 6
Questions 3-6: lowing data were obtained for the reaction: 2NO g) + Odg)→ 2NO2(g) Concentrations are "mol/L" and rates are in "(mol/L)Ys" INOlo 1.0 x 10-3 1.0 × 10-3 2.0 × 10-3 02]o 1.0 × 10-3 2.0 x 103 1.0 x 10-3 Initial Rate 2.0 × 10-5 4.0 × 10-5 8.0 x 10- 3. Consider the differential rate law, r kNoTO.], how do we determine the reaction o m? A. By educated guess B. By using the...
The equilibrium constant () of the reaction below is K-6.0 x 10 with initial concentrations as follows: [H2] = 1.0 x 102 M. [Na] - 4.0 M, and (NH) - 1.0 x 10* M. N (8) + 3H,() 2NH3(e) 3. Consider the chemical reaction: N2 + 3H2 yields 2NH3. If the concentration of the reactant Hy was increased from 1.0 x 10-2M to 2.5 x 10-M, calculate the reaction quotient (C) and determine which way the chemical system would shift...
please show all work
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...
1. Consider the following kinetic data, collected at 25.0°C, for the reaction 2 NO. + Cl2 → 2NOCI Experiment INOJM) 0.0300 0.0150 0.0150 [CI] (M) 0.0100 0.0100 0.0400 Rate (M/s) 3.4 x 10 8.5 x 10-5 3.4 x 10+ الدنيا a. What is the reaction order with respect to NO? b. What is the reaction order with respect to CIL? c. What is the overall reaction order? d. Determine the value of the rate constant, k (round to 2 sig...
1) The following experimental data were obtained for a particular irreversible reaction at T = 25.0 °C. It is assumed that the reaction obeys a rate law of the form rate = - d[A]/dt = k [A]P [B]" (1.1) Trial [A]initial (mol/L) [B]initial (mol/L) (Rate) initial (mol/L•min) 0.00100 0.00100 0.00100 0.00100 0.00100 0.00200 0.00400 0.01000 2.6 x 10-8 1.2 x 10-7 3.9 x 10-7 2.4 x 10-6 0.00200 0.00400 0.01000 0.00200 0.00200 0.00200 1.5 x 10-7 1.1 x 107 1.6...