If t3 / 4 and t1 / 2 are time required for completion of 3 / 4 decay and 1 / 4 decay then t3 / 4=t1 / 2 × n, then n is ldots ldots

Question

If t3 / 4 and t1 / 2 are time required for completion of 3 / 4 decay and 1 / 4 decay then t3 / 4=t1 / 2 × n, then n is ldots ldots (A)  (B)  (C)  (D)

Tardigrade Admin · Accepted Answer

t3 / 4=(2.303/λ) log (1/1 / 4) =(2.303/λ) log 4=(2.303/λ) log 22 =2 × (2.303/λ) log 2=2 × t1 / 2 .(t1 / 2=(0.693/λ)=( ln 2/λ))

Q. If $t_{3/4}$ and $t_{1/2}$ are time required for completion of $3/4$ decay and $1/4$ decay then $t_{3/4} = t_{1/2} \times n$ , then $n$ is $\dots\dots$