JEE MAIN - Chemistry (2025 - 7th April Morning Shift - No. 2)

A person's wound was exposed to some bacteria and then bacterial growth started to happen at the same place. The wound was later treated with some antibacterial medicine and the rate of bacterial decay(r) was found to be proportional with the square of the existing number of bacteria at any instance. Which of the following set of graphs correctly represents the 'before' and 'after' situation of the application of the medicine?

[Given: $N=$ No. of bacteria, $t=$ time, bacterial growth follows $1^{\text {st }}$ order kinetics.]

JEE Main 2025 (Online) 7th April Morning Shift Chemistry - Chemical Kinetics and Nuclear Chemistry Question 9 English Option 1

JEE Main 2025 (Online) 7th April Morning Shift Chemistry - Chemical Kinetics and Nuclear Chemistry Question 9 English Option 2

JEE Main 2025 (Online) 7th April Morning Shift Chemistry - Chemical Kinetics and Nuclear Chemistry Question 9 English Option 3

JEE Main 2025 (Online) 7th April Morning Shift Chemistry - Chemical Kinetics and Nuclear Chemistry Question 9 English Option 4

Explanation

*Before applying medicine

$\frac{\mathrm{dA}}{\mathrm{dt}}=\mathrm{K}[\mathrm{A}]$ (First order growth) (Rate law)

$$\frac{\mathrm{A}}{\mathrm{~A}_0}=\frac{\mathrm{N}}{\mathrm{~N}_0}=\mathrm{e}^{\mathrm{Kt}}$$

*After applying medicine

JEE Main 2025 (Online) 7th April Morning Shift Chemistry - Chemical Kinetics and Nuclear Chemistry Question 9 English Explanation

$\mathrm{y=K_x{ }^2}$ Parabola

JEE MAIN - Chemistry (2025 - 7th April Morning Shift - No. 2)

Explanation

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