Question #207411

in 180 minutes, the activity of a certain radioactive substance falls to 1/8 its original value. calculate its half life


1
Expert's answer
2021-06-15T14:57:05-0400

18N0=N02tT1/2,\frac18N_0=N_02^{-\frac{t}{T_{1/2}}},     \implies

T1/2=t3=1803=60 min.T_{1/2}=\frac t 3=\frac{180}{3}=60~min.


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