According to the integrated second order rate law is:
1/[AB] = 1/[AB]o + Kt
when K is constant (given) = 5.5 x 10^-2
and t is the time = 80 s
and [AB]o is the initial concentration = 0.29 m
so by substitution:
1/[AB] = 1/0.29 + (5.5 x 10^-2) * 80
∴[AB] = 0.127 m
from the reaction equation, we can see the molar ratio between AB& B & A is 1:1:1
the [AB] lost = 0.29 m - 0.127m
= 0.163 m
so both A & B will gain the same number of moles
∴∴[A]= [B] = 0.163 m
