For the reaction $A + B \xrightarrow{K} C$,identify the incorrect order of reaction indicated against the rate expression.

  • A
    $\frac{d[C]}{dt} = K[A] \rightarrow 1$
  • B
    $\frac{d[C]}{dt} = K[A][B] \rightarrow 2$
  • C
    $\frac{-d[A]}{dt} = K[A][B]^0 \rightarrow 2$
  • D
    $\frac{-d[A]}{dt} = K[A] \rightarrow 1$

Explore More

Similar Questions

The following are the rate constants of two different reactions. Determine the overall order of reaction for each case:
$(a)$ $6.66 \times 10^{-3} \, s^{-1}$
$(b)$ $4.5 \times 10^{-2} \, mol^{-1} \, L \, s^{-1}$

Which of the following statements is $NOT$ correct regarding the order of reaction?

What is the unit of the rate constant for a $4^{th}$ order reaction?

For the reaction $2NO_{(g)} + O_{2_{(g)}} \rightarrow 2NO_{2_{(g)}}$,the volume of the reaction vessel is suddenly reduced to half of its original volume. If the reaction is first order with respect to $O_2$ and second order with respect to $NO$,the rate of the reaction will:

Which of the following is a unimolecular reaction?

Vedclass Products

For Students

Vedclass Test Series

Mock tests in real JEE/NEET style with performance analysis. 5-day free trial.

Start Free Trial
For Teachers

Exam Paper Generator

Generate Set A/B/C/D exam papers from 7.5L+ questions in 2 minutes. 3 chapters free.

Try Free
For Institutes

Online Exam Module

Live online exams with unlimited students, 360° analytics & white-label branding.

See Demo