The activity of the radioactive sample drops to 1/64 of its original value in 2 hr find the decay constant `(lambda)`.

The activity of the radioactive sample drops to 1/64 of its original v

1.	The activity of the radioactive sample drops to 1/64 of its original value in 2 hr find the decay constant `(lambda)`.
Answer» Correct Answer - `lambda=2.079hr^(-1)` `lambda=(1)/(2) ln. (1)/((1//64))=2.079 hr^(-1)`

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The activity of the radioactive sample drops to 1/64 of its original value in 2 hr find the decay constant `(lambda)`.

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