A radioisotope has `t_(1//2) = 3` years. After a given amount decays for 12 years, what fraction of the original isotope remains?

A radioisotope has `t_(1//2) = 3` years. After a given amount decays f

1.	A radioisotope has `t_(1//2) = 3` years. After a given amount decays for 12 years, what fraction of the original isotope remains?
Answer» Given half life `(t_(1//2)) = 3` years Time for decay `(T) = 12` years We know that `T = n xx t_(1//2)` `12 = n xx 3` `:.n = (12)/(3) = 4` Let the original amount `N_(0)` Let the amount left after three half-life periods be `N`. we know that `N = ((1)/(2))^(n) N_(0)` or `(N)/(N_(0)) = ((1)/(2))^(n) = ((1)/(2))^(4) = (1)/(16)`

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A radioisotope has `t_(1//2) = 3` years. After a given amount decays for 12 years, what fraction of the original isotope remains?

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