A radioactive sample emits n `beta`-particles in 2 sec. In next 2 sec it emits 0.75 n `beta` - particles, what is the mean life of the sample ?

A radioactive sample emits n `beta`-particles in 2 sec. In next 2 sec

1.	A radioactive sample emits n `beta`-particles in 2 sec. In next 2 sec it emits 0.75 n `beta` - particles, what is the mean life of the sample ?
Answer» Correct Answer - `1.75n=N_(0)(1-e^(-4 lambda)),6.95 sec, (2)/(ln((4)/(3)))` Let initial number of nuclei `=N_(0)` `N_(0)overset(2 "sec")rarr (N_(0)-n) overset(2 "sec")rarr(N_(0)-n-0.75 n)` (No. of `beta` particles emitted=No. of nuclei disintegrated) No. of nuclei disintegrated in time is given by `=N_(0)(1-e^(-lambdat t)` `:.` for initial 2 seconds `n=N_(0)(1-e^(-2lambda)) " " `...........(i) for next 2 seconds `0.75 n=(N_(0)-n)(1-e^(-2 lambda)) " " ` ..........(ii) Subtracting (ii) from (i) ((i)-(ii)) `.25 n=n (1-e^(-2lambda))` `e^(-2lambda)=0.75` `-2lambda=ln. (3)/(4) " " rArr 2lambda =ln .(4)/(3)` `t_("avg")=(1)/(lambda)=(2)/(ln((4)/(3)))=6.95 "sec"`

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A radioactive sample emits n `beta`-particles in 2 sec. In next 2 sec it emits 0.75 n `beta` - particles, what is the mean life of the sample ?

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