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

  • A
    Order can be determined experimentally.
  • B
    Order of reaction is equal to the sum of the powers of concentration terms in the differential rate law.
  • C
    It is not affected by the stoichiometric coefficients of the reactants.
  • D
    Order cannot be fractional.

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The rate law for the reaction below is given by the expression $Rate = k[A][B]$.
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If the concentration of $B$ is increased from $0.1 \ M$ to $0.3 \ M$,keeping the concentration of $A$ constant at $0.1 \ M$,the rate constant $(k)$ will be:

In the reaction $A + B \to \text{Products}$,the initial concentration of both $A$ and $B$ is $0.1 \, M$. When the concentration decreases to $1.0 \times 10^{-2} \, M$,the half-life period increases by ten times. The rate of the reaction is:

An example of a pseudo-$unimolecular$ reaction is

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