Answer:
The rate law of the reaction will be;
[tex]R=k[H_3PO_4]^1[/tex]
Explanation:
[tex]2H_3PO_4 (aq)\rightarrow P_2O_5 (aq) + 3H_2O (aq)[/tex]
Let the rate law of the reaction be :[tex]R=k[H_3PO_4]^a[/tex]
Where : R is rate of the reaction at at given concentration of [tex]H_3PO_4[/tex] and k is rate constant.
Rate of reaction from zero second to 1 second:
[tex]R=-\frac{0.018M-0.03M}{1-0}=0.012 M/s[/tex]
[tex]0.012 M/s=k[0.018 M]^a[/tex]..[1]
Rate of reaction from 1 second to 2 second:
[tex]R=-\frac{0.011 M-0.018M}{2-1}=0.007 M/s[/tex]
[tex]0.007 M/s=k[0.011 M]^a[/tex]..[2]
[1] ÷ [2]
[tex]\frac{0.012 M/s}{0.007M/s}=\frac{k[0.018 M]^a}{k[0.011 M]^a}[/tex]
a = 1.09 ≈ 1
The rate law of the reaction will be;
[tex]R=k[H_3PO_4]^1[/tex]
