a. Write the rate law for this reaction.
b. Calculate the rate constant.
c. At what rate does KI disappear if the initial concentrations are
[KI] = 0.0450 M and [(NH4)2S2O8] = 0.120 M?
d. At what rate does (NH4)2S2O8 disappear under the conditions
given in part c?
The powers of 10 in the last boxes are 10^-3
a. Write the rate law for this reaction. b. Calculate the rate constant. c. At what...
Below is a mechanism for the reaction A+B- P 5. 2A ? A+C rate constant kl AtC 2A rate constant k B+C Prate constant k2 In this mechanism, C is an intermediate. nd the steady state approximation if necessary, determine the rate law for the reaction. (B) Under what conditions does the rate law become first order in [AJ? (C) Under what conditions does the rate not depend on [B]?
How do I calculate the Rate of Reaction and the Relative Rate of Reaction? 0.04M 0.1M Initial I Concentration Initial S2082- Concentration Show a calculation of how you calculated the rate of reaction Rate of Reaction Use M/s to represent (mol/L)/s Show a calculation of how you calculated the relative rate of reaction Relative Rate of Reaction Reaction 1 Save&Continue Time to Colour Change 948 Numeric answers include a number followed by units. Nothing else. Pay attention to precision. Use...
2.c and 2.d 2. The rate law for the reaction A+B a. Write the rate law expression. C + D is first order in [A] and second order in [B]. Rate low- k[A] [B]² b. What is the overall order of reaction? 1 +2= 3 c. How does the rate change if [A] is halved and [B] is tripled?! d. Given the data below, propose initial concentrations for A and B that would enable you to empirically determine the given...
Rate Law; For the following problems, determine the rate law (find orders) for the stated reaction, write the rate law, and determine the value and units of the rate constant. 4. For the reaction 2A + B --> C + D + E Experiment [A] [B] Initial Rate, M/min 1 0.015 0.006 0.0195 2 0.015 0.012 0.039 3 0.045 0.012 0.120
Consider the following reaction: A + B + C +D The rate law for this reaction is as follows: Rate = k Alla B11/2 Suppose the rate of the reaction at certain initial concentrations of A, B, and C is 1.14x10-2 M/s. Part A What is the rate of the reaction if the concentrations of A and C are doubled and the concentration of B is tripled? VO AED A O O ? Rate 2 = M/s Submit Request Answer
Initial rate data are listed in the table for the reaction: NH4+ (aq) + NO2- (aq) → N2 (g) + H2O (l) First determine the rate law and rate constant. Under the same initial conditions as in Experiment 4, calculate [NH4+] at 184 seconds after the start of the reaction. In this experiment, both reactants are present at the same initial concentration. The units should be M, and should be calculated to three significant figures. 1:26 Bb Bb # ....
For the following reaction: 2A + B → 2 C The rate law is determined to be: rate = 0.4357 [A][B] What will be the initial rate (in M/s) if initial concentrations are: [A] = 0.500 M, [B] = 1.54 [M]
what is the correct rate law for the reaction at 1500 C determine the rate constant for the reaction at 1500C Hydrogen gas reduces NO to N2 in the following reaction: 2H2 (g) +2NO(&2H20(g)N2() The initial reaction rates of four mixtures of H2 and NO were measured at 1500°C with the following results: Experiment [H2lo (M) [NOlo (M) Initial Rate (M/s) 2 3 4 0.212 0.212 0.424 0.848 0.136 0.272 0.544 0.544 0.0265 0.0533 0.419 1.68
a. Given these data for the reaction A + B → C, write the rate-law expression. Use k for the rate constant.) b. What is the value, with units, for the specific rate constant? The specific rate constant- Initial Rate of Initial [A] Initial [B] Formation of C Expt. (M) (M.s-1) 0.30 0.30 0.60 0.20 0.40 0.80 4.0 x 10-5 1.6 x 10-4 2.6 x 10-3
10. Consider the reaction A + 2B → C ne rate law for this reaction is on der in and and order in B if the rate constant at 25°C is 1.25x 105 , find the rate of reaction when the concentration of A is 0.27M and the concentration of B is 0.32 M UMA 21 11. Consider the reaction A +2B C + D. The rate law for this reaction is first order in A and zeroth order in...