COMEDK 2024 Shift 1 Paper

To determine the value of " y ", we need to find the relationship between the time required for 80% of a first order reaction (t80) and the half-life period (t1∕2) of the same reaction.
For a first-order reaction, the amount of reactant remaining at any time t can be described by the equation:
[A]=[A]0e−kt

where:
[A] is the concentration of the reactant at time t, [A]0 is the initial concentration of the reactant, k is the rate constant, t is time.
The half-life period t1∕2 is given by:

t1∕2=‌

0.693

k

Now, to find the time required for 80% of the reaction to complete, we need to find the time t80 when [A]=0.2[A]0 (since 80% of the reactant has reacted and only 20% remains). Thus, we have:
0.2[A]0=[A]0e−kt80

Simplifying this equation:
0.2=e−kt80
Taking natural logarithm on both sides:
ln(0.2)=−kt80
We know that:
‌ln(0.2)=ln(‌

1

5

)=−ln(5)
‌−kt80=−ln(5)
‌kt80=ln(5)
Now, substituting the value of k from the half-life period equation k=‌

0.693

t1∕2

:
‌‌

0.693

t1∕2

t80=ln(5)
‌t80=‌

t1∕2‌ln(5)

0.693

Using the value of ln(5)≈1.609, we get:
‌t80=‌

t1∕2×1.609

0.693

‌t80≈t1∕2×2.32

This shows that the time required for 80% of the reaction to complete is 2.32 times the half-life period of the same reaction. Therefore, the value of " y " is:
Option B: 2.32