Question
Please answer the following question
72 KINE 505: Studying the Rate of Reaction of Potassium Permanganate and Oxalic Acid 4. Consider the reaction of ammonium ion
0 0
Add a comment Improve this question Transcribed image text
Answer #1

To find x and y andy Based on te ven dat wnt tSo onder of to nesthn w.nt rlp is can la t eine k AS-

Add a comment
Know the answer?
Add Answer to:
Please answer the following question 72 KINE 505: Studying the Rate of Reaction of Potassium Permanganate...
Your Answer:

Post as a guest

Your Name:

What's your source?

Earn Coins

Coins can be redeemed for fabulous gifts.

Not the answer you're looking for? Ask your own homework help question. Our experts will answer your question WITHIN MINUTES for Free.
Similar Homework Help Questions
  • Consider the reaction of ammonium ions (NH and nitrite ions (NO2), shown in Equation 1. NH...

    Consider the reaction of ammonium ions (NH and nitrite ions (NO2), shown in Equation 1. NH (aq) +NO2 (aq)N2 (g +2H O 0) Solutions of NH4 and NO2 were mixed in various quantities and the following rate data were obtained at a constant temperature: Experiment Initial [NH4 Initial [NO2] Initial rate for formation of N2 moVL s 3.04 x 10 6.08 x 10 1.22 x 10 0.1507.50 x 10 0.1501.50 102 0.300 1.50x 10 1. Find the order of the...

  • what is the overall reaction order ? LAU B: KINE 0505 Studying the Rate of the...

    what is the overall reaction order ? LAU B: KINE 0505 Studying the Rate of the of the Reaction of Potassium Permanganate and Oxalic A Table II Calculated initial concentrations, mol/L Determination Humber H.CO. Average clapsed Pinte, .2+28 sec Ranction rate, mol/L. 2.52x10 m/s 7.98x10-5 m/s &mofl alisec s KMnO m40.10 10.629 move 0,0108moll 217sec 10.315 mol/L 0.027move 426esec 5,09x10m Order of reaction with respect to (a) H.CO. One Overall reaction order (b) KMnO pere one Calculated rate constant, k,...

  • 3a, 3b, and 3c please de KINE 505 Sadying tde Ree of the Boaon of P...

    3a, 3b, and 3c please de KINE 505 Sadying tde Ree of the Boaon of P d Ou Ad Post-Laboratory Questions (Use the spaces provided for the answers and additional paper if necessary.) 1. When you caloulated k in the rate equation for the reaction of KMno, solution and HC-O, solution, you assumed khad the same value under the conditions of determinations 1, 2, and 3. (a) Use the method of initial rates to find the order of the reaction...

  • Initial rate data are listed in the table for the reaction: NH4+ (aq) + NO2 (aq) + N2(g) + H20 (1) Experiment (NH4+) (N...

    Initial rate data are listed in the table for the reaction: NH4+ (aq) + NO2 (aq) + N2(g) + H20 (1) Experiment (NH4+) (NO2). Initial rate (m/s) AWN + 0.24 0.10 0.12 0.10 0.120.15 0.12 0.12 7.2 x 10-4 3.6 x 104 5.4 x 10-4 4.3 x 10-4 First determine the rate law and rate constant. Under the same initial conditions as in Experiment 4, calculate [NH4+) at 114 seconds after the start of the reaction. In this experiment, both...

  • Initial rate data are listed in the table for the reaction: Initial rate data are listed...

    Initial rate data are listed in the table for the reaction: Initial rate data are listed in the table for the reaction: NH4+ (aq) + NO2 (aq) + N2 (g) + H20 (1) Experiment (NH4+]: [NO 2-1. Initial rate (M/s) 0.24 0.10 7.2 x 10-4 0.10 3.6 x 10-4 10.12 0.15 5.4 x 10-4 0.12 0.12 4.3 x 10-4 0.12 First determine the rate law and rate constant. Under the same initial conditions as in Experiment 4, calculate [NH4+] at...

  • Initial rate data are listed in the table for the reaction: NH4+ (aq) + NO2 (aq)...

    Initial rate data are listed in the table for the reaction: NH4+ (aq) + NO2 (aq) → N2 (g) + H20 (1) AWNA Experiment (NH4+1: [NO2). Initial rate (M/s) 0.24 0.10 17.2 x 10-4 0.12 0.10 13.6 x 10-4 0.15 15.4 x 10-4 0.12 0.12 4.3 x 10-4 0.12 First determine the rate law and rate constant. Under the same initial conditions as in Experiment 4, calculate (NH4+] at 103 seconds after the start of the reaction. In this experiment,...

  • Ammonium ion reacts slowly with nitrite ion: NH4+ (aq) + NO2(aq) + N2(g) + 2H20(1) Rate...

    Ammonium ion reacts slowly with nitrite ion: NH4+ (aq) + NO2(aq) + N2(g) + 2H20(1) Rate data for this reaction, measured at a certain temperature, are as follows: Expt. (NH4+] (M) [NO] (M) Rate (MSP) 1 10.1200 .300 5.20 x 106 2 0.480 0.300 2.08 x 105 3 0.480 0.150 1.04 x 105 (a) Determine the rate law for the reaction. Enter your result in the equation below, by putting the appropriate exponent next to each species. (Enter of the...

  • Ammonium ion reacts slowly with nitrite ion: NH4+ (aq) + NO2(aq) → N2(g) + 2H20(1) Rate...

    Ammonium ion reacts slowly with nitrite ion: NH4+ (aq) + NO2(aq) → N2(g) + 2H20(1) Rate data for this reaction, measured at a certain temperature, are as follows: Expt. (NH4+] (M) [NO2] (M) Rate (M sł) 1 0.100 0 .220 6.00 x 106 0.400 0.220 2.40 x 105 3 0.400 0.110 1.20 x 105 (a) Determine the rate law for the reaction. Enter your result in the equation below, by putting the appropriate exponent next to each species. (Enter O...

  • please help Answer the questions in the blue book in order. You must show all working for full credit. R- 0.08206...

    please help Answer the questions in the blue book in order. You must show all working for full credit. R- 0.08206 Latm/mol.K 1. Initial rate data at 25.0 °C for the reaction: NH4+ (aq) + NO2 (aq) ----> N2(g) + H20 (1) are shown below: Expt. [NH4+lo [NO2 lo Initial rate/Ms 0.24 0.12 0.12 0.10 0.10 0.15 7.2 x 10-6 3.6 x 10-6 iii) 5.4 x 10-6 Determine the rate law from the data and calculate the rate constant k...

  • Initial rate data are listed in the table for the reaction NH4t (aq)NO2 (aq)N2 (g)H20 () Experiment [NH4+[NO2Initial ra...

    Initial rate data are listed in the table for the reaction NH4t (aq)NO2 (aq)N2 (g)H20 () Experiment [NH4+[NO2Initial rate (M/s) 0.10 0.24 7.2 x 104 1 0.10 0.12 3.6 x 104 0.12 0.15 5.4 x 104 0.12 0.12 4.3 x 104 4 First determine the rate law and rate constant Under the same initial conditions as in Experiment 4, calculate [NH4 ] at 368 seconds after the start of the reaction. In this experiment, both reactants are present at the...

ADVERTISEMENT
Free Homework Help App
Download From Google Play
Scan Your Homework
to Get Instant Free Answers
Need Online Homework Help?
Ask a Question
Get Answers For Free
Most questions answered within 3 hours.
ADVERTISEMENT
ADVERTISEMENT
ADVERTISEMENT