Answer:
The rate law for second order unimolecular irreversible reaction is
![(1)/([A]) = k.t + (1)/([A]_(0) )](https://img.qammunity.org/2020/formulas/chemistry/college/uon2ztzfd01qrtvd863dgvw1l9zoolmtvx.png)
Step-by-step explanation:
A second order unimolecular irreversible reaction is
2A → B
Thus the rate of the reaction is
![v = -(1)/(2).(d[A])/(dt) = k.[A]^(2)](https://img.qammunity.org/2020/formulas/chemistry/college/hodnbj28jbj2jhb0hut3v5y9w1axoyrjob.png)
rearranging the ecuation
![-(1)/(2).(k)/(dt) = ([A]^(2))/(d[A])](https://img.qammunity.org/2020/formulas/chemistry/college/zgyq757m7f0zrieznpnxjna39crfkjxkde.png)
Integrating between times 0 to t and between the concentrations of
![[A]_(0)](https://img.qammunity.org/2020/formulas/chemistry/college/qqxha3gkqyi6nvxca57jmthzzzu8zyjq3q.png)
to [A].
![\int\limits^0_t -(1)/(2).(k)/(dt) =\int\limits^A_(0) _A([A]^(2))/(d[A])](https://img.qammunity.org/2020/formulas/chemistry/college/1bhsbny44k20yy4wj4x0s1aj4vlgqjnxkh.png)
Solving the integral