Given below is the data for the reaction. Calculate the value of the rate constant "k" with proper units. A B C Set [A] (M) [B] (M) Init, rate M-sec! 1 0.050 0.200 5.0 x 10-5 0.100 0.200 5.0 x 10-5 3. 0.050 0.600 4.5 x 10-4 Determine the order in "A" 2 Determine the order in "B" Substitute the order for A and B in the rate law equation below. Rate = k [A]' [B]* 0.025M^-1Sec^-1 Solve for "k" (Must include units) K-125 x 100-3 MA-1 SECA1

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Given below is the data for the reaction. Calculate the value of the rate constant "k" with
proper units.
A + B C
Set
[A] (M)
[B] (M)
Init, rate M-sec
1
0.050
0.200
5.0 x 10-5
0.100
0.200
5.0 x 10-5
3.
_0.050
0.600
4.5 x 10-4
Determine the order in "A"
Determine the order in "B"
Substitute the order for A and B in the rate law equation below.
Rate = k [A] [B]
0.025M^-1Sec^-1
Solve for "k" (Must include units)
K= 1.25 x 10^-3 M^-1 SEC^-1
Transcribed Image Text:Given below is the data for the reaction. Calculate the value of the rate constant "k" with proper units. A + B C Set [A] (M) [B] (M) Init, rate M-sec 1 0.050 0.200 5.0 x 10-5 0.100 0.200 5.0 x 10-5 3. _0.050 0.600 4.5 x 10-4 Determine the order in "A" Determine the order in "B" Substitute the order for A and B in the rate law equation below. Rate = k [A] [B] 0.025M^-1Sec^-1 Solve for "k" (Must include units) K= 1.25 x 10^-3 M^-1 SEC^-1
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