The graph between logT50 and log(1a) (where T50 and a are the half - life period and the concentration respectively) for a nth order reaction is of the type:
What is the value of n?
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Solution
Rate=k[A]n
Half-life of nth order by solving the integrated form of the above equation A1−n021−n×(1−n)−A1−n0(1−n)=kt (n−1)log1A0+log(1(2)1−n(1−n)−11−n)=logk+logt50
slope is n−1 which is equal to tan450 n−1=1 n=2