Question #7bdb7

1 Answer
Stefan V.
Oct 18, 2017

Here's what I got.

Explanation:

The idea here is that a radioactive isotope's nuclear half-life tells you the time needed for half of an initial sample to undergo radioactive decay.

In your case, you know that it takes 3 minutes for half of any amount of polonium-218 that you have to undergo radioactive decay.

If you take A_0 to be the initial mass of polonium-238 and A_t to be the amount that remains undecayed after a given period of time t, you can say that you have

A_t = A_0 * (1/2)^n

Here

  • n is the number of half-lives that pass in the given period of time t

In your case, you know that it takes 30 minutes to transport the sample of polonium-238, which implies that you have

n = (30 color(red)(cancel(color(black)("minutes"))))/(3color(red)(cancel(color(black)("minutes")))) = 10

So if 10 half-lives pass in 30 minutes and you know that you must end up with "0.10 g" of polonium-238, you can say that you have

"0.10 g" = A_0 * (1/2)^10

Rearrange to solve for A_0

A_0 = "0.10 g" * 2^10 = "102.4 g"

Now, I'll leave the answer rounded to two sig figs, but you could round it to one significant figure based on the value you have for the half-life of the isotope.

color(darkgreen)(ul(color(black)("amount needed" = 1.0 * 10^2color(white)(.)"g")))

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