A radioactive substance has a half life of 20 days. What fraction of the original radioactive nuclei will remain after 80 days?
\( \frac{1}{32} \)
\( \frac{1}{16} \)
\( \frac{1}{8} \)
\( \frac{1}{4} \)
Explanation
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Discussions (8)
no you guys are wrong heres the real deal
80 60 40 20 thats total number of 4 and we have the formular to be
N/N = (1/2)^n
now considering the nucleir path
1/2)n where n = 4
opening the bracket we have something like 2^4 which is equal to 2 x 2 x 2 x 2 = 16 then sub it in the space of 2 making
1/16
The solution given has an error in the calculation : it is supposed to be raised to the power of 4 not 2. Thank you.
please d answer shud be C.. after 20 days 1/2 will decay. after 40 days 1/4. after 60 days 1/6 wil decay and after 80 days 1/8 will decay. so d fraction dat remains after 80 days is 1/8
