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For the reaction `A + B rarr C + D`, doubling the concentration of both the reactants increases the reaction rate by `8` times and doubling the initial concentration of only `B` ismply doubles the reaction rate. What is the rate law for the reaction ?
A. `r=k[A]^(1//2)[B]^(1//2)`
B. `r=k[A][B]^(2)`
C. `r= k[A]^(2)[B]`
D. `r=k[A][B]`

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Correct Answer - C
c) The data suggests that reaction rate ( r) `propto [A]^(2)` and is `propto [B]`.
`therefore r=k[A]6(2)[B]`

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