6. Consider the experimentally determined data for the following reaction: Time (s) [SO;Cl2] (M) 0.100 5.00 x 10 1.00 x 104 1.50 x 10* 0.0896 SO,CL(9) – SO2(g) + Cl2(g) 0.0802 0.0719 2.50 x 10 0.0577 3.00 x 104 4.00 x 10 0.0517 0.0415 a. Write the rate law for this overall reaction. b. Explain how you could use the data to determine the order of SO2Cl. Draw graphs or figures to aid your explanation. Dc. Based on your answer to Part A, explain how you would determine the rate constant for the rate law.

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Please provide the step by step solution for the question attached (JUST PART C). Graphics must be included. Please make sure the graphics are visible.

6. Consider the experimentally determined data for the following reaction:
Time (s)
[SO2Cl2] (M)
0.100
5.00 x 103
1.00 x 104
0.0896
SO,CL(g) – SO2(g) + Cl2(g)
0.0802
1.50 x 10
0.0719
2.50 x 104
0.0577
3.00 x 104
0.0517
4.00 x 104
0.0415
a. Write the rate law for this overall reaction.
b. Explain how you could use the data to determine the order of SO;Cb. Draw
graphs or figures to aid your explanation.
c. Based on your answer to Part A, explain how you would determine the rate
constant for the rate law.
Transcribed Image Text:6. Consider the experimentally determined data for the following reaction: Time (s) [SO2Cl2] (M) 0.100 5.00 x 103 1.00 x 104 0.0896 SO,CL(g) – SO2(g) + Cl2(g) 0.0802 1.50 x 10 0.0719 2.50 x 104 0.0577 3.00 x 104 0.0517 4.00 x 104 0.0415 a. Write the rate law for this overall reaction. b. Explain how you could use the data to determine the order of SO;Cb. Draw graphs or figures to aid your explanation. c. Based on your answer to Part A, explain how you would determine the rate constant for the rate law.
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