ANs: [A] = [B] = 0.094 M
The following reaction was monitored as a function of time:
AB --> A + B
A plot of 1/[AB] versus time is a straight line with slope, K = 5.5×10^−2 M * s.
Now,
[tex] \frac{1}{[AB]} = \frac{1}{[AB_{0} ]} + kT \\ \\ \frac{1}{[AB]} = \frac{1}{0.210} + (5.5* 10^{-2})*70 sec \\ \\ \\ \[AB] = 0.116[/tex]
Now, Since at 70 s, [AB] = 0.116 M,
then amount of AB lost:
0.210 M - 0.116 M = 0.094 M
Now, according to the stoichiometry of the reaction,
AB : A : B = 1 : 1 : 1,
so both [A] and [B] gained the same number of moles and thus have same concentration, as [AB] lost.
So, [A] = [B] = 0.094 M after 70 s.
