The reaction of peroxydisulfate ion (S,0g) with iodide ion (I) is S,0, (aq) + 31 (aq)→ 2So, (aq) +I (aq) From the following data collected at a certain temperature, determine the rate law and calculate the rate constant. Experiment [S,0,²](M) Initial Rate [M/s] 0.0300 0.1000 5.60 x 104 2. 0.0300 0.0500 2.80 x 104 3 0.0600 0.0500 5.60 x 104 (a) Which of the following equations represents the rate law for this reaction? A. rate = k[S,OgO B. rate = k[S,O,O C. rate = k[S,OgD D. rate = k[S,Og²T²1? %3D A O BO CO D (b) What is the rate constant for the reaction? k = M's
The reaction of peroxydisulfate ion (S,0g) with iodide ion (I) is S,0, (aq) + 31 (aq)→ 2So, (aq) +I (aq) From the following data collected at a certain temperature, determine the rate law and calculate the rate constant. Experiment [S,0,²](M) Initial Rate [M/s] 0.0300 0.1000 5.60 x 104 2. 0.0300 0.0500 2.80 x 104 3 0.0600 0.0500 5.60 x 104 (a) Which of the following equations represents the rate law for this reaction? A. rate = k[S,OgO B. rate = k[S,O,O C. rate = k[S,OgD D. rate = k[S,Og²T²1? %3D A O BO CO D (b) What is the rate constant for the reaction? k = M's
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The reaction of peroxydisulfate ion (S,0g) with iodide ion (I) is
S,0, (ag) + 31 (aq) →
2s0, (ag) + I, (aq)
From the following data collected at a certain temperature, determine the rate law and calculate the
rate constant.
Experiment [S0g 1(M) M)
Initial Rate [M/s]
1
0.0300
0.1000
5.60 x 104
0.0300
0.0500
2.80 x 10-4
3
0.0600
0.0500
5.60 x 10-4
(a) Which of the following equations represents the rate law for this reaction?
A. rate = k[S,OgO
B. rate = k[S,O, O
C. rate = k[S,Og O
D. rate = k[S,Og²7²7?
A O
BO
C O
D
(b) What is the rate constant for the reaction?
M's
k =
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Transcribed Image Text:Question 4 - Quiz 3 Sem 2 2020 X
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The reaction of peroxydisulfate ion (S,0g) with iodide ion (I) is
S,0, (ag) + 31 (aq) →
2s0, (ag) + I, (aq)
From the following data collected at a certain temperature, determine the rate law and calculate the
rate constant.
Experiment [S0g 1(M) M)
Initial Rate [M/s]
1
0.0300
0.1000
5.60 x 104
0.0300
0.0500
2.80 x 10-4
3
0.0600
0.0500
5.60 x 10-4
(a) Which of the following equations represents the rate law for this reaction?
A. rate = k[S,OgO
B. rate = k[S,O, O
C. rate = k[S,Og O
D. rate = k[S,Og²7²7?
A O
BO
C O
D
(b) What is the rate constant for the reaction?
M's
k =
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