JEE Main 2023ChemistryChemical KineticsMediumNumerical

JEE Main 2023Chemical Kinetics Question with Solution

JEE Main 2023 (10 Apr Shift 1)

Question

A molecule undergoes two independent first order reactions whose respective half lives are 12 min and 3 min. If both the reactions are occurring then the time taken for the 50% consumption of the reactant is ______ min. (Nearest integer)

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Show full solutionCorrect answer: 2
Correct answer
2

Step-by-step explanation

For parallel reaction

When adding the rate constants of the two reactions, we need to use the formula for combining rate constants of two reactions in parallel, which is:

k=k1+k2

where k1 and k2 are the rate constants of the individual reactions.

In this case, the half-lives of the two reactions are 12 min and 3 min, respectively. The rate constants of the two reactions can be calculated using the formula for half-life of a first-order reaction:

1t1/2=112+13=512

Net t1/2=125=2.4 min2 min

Hence time taken for 50% consumption of reactant will be close to 2 min.

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About this question

This is a previous-year question from JEE Main 2023, covering the Chemical Kinetics chapter of Chemistry. PrepSharp catalogues every PYQ from JEE Main with a verified answer key and step-by-step solution prepared by IIT alumni — so you can search by chapter, topic or year and revise efficiently.