Which of the following rate laws has an overall order of $0.5$ for a reaction involving substances $x$,$y$,and $z$?

  • A
    Rate $= K[x][y][z]$
  • B
    Rate $= K[x]^{0.5}[y]^{0.5}[z]^{0.5}$
  • C
    Rate $= K[x]^{1.5}[y]^{-1}[z]^0$
  • D
    Rate $= K[x][z]^n/[y]^2$

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Similar Questions

The differential form of the rate equation is given by:
$dx/dt = k[P][Q]^{0.5}[R]^{0.5}$
Which statement about the above equation is wrong?

The rate constants for first-order and second-order reactions have units of ..... respectively.

Which one of the following statements regarding the order of a reaction is not correct?

For the reaction $A_2 + B_2 \to 2AB$,the experimental data is given below. Determine the order of the reaction.
Experiment No. $[A_2] \text{ (M)}$ $[B_2] \text{ (M)}$ Rate $(M \cdot s^{-1})$
$1$ $0.1$ $0.1$ $1.6 \times 10^{-4}$
$2$ $0.1$ $0.2$ $3.2 \times 10^{-4}$
$3$ $0.2$ $0.1$ $3.2 \times 10^{-4}$

At what concentration of the reactant (in $M$) are the rate constants for first-order,second-order,and third-order reactions equal?

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