Question #a4462

1 Answer
Stefan V.
Feb 27, 2017

"11.1 days"

Explanation:

Your tool of choice here will be the equation

color(blue)(ul(color(black)(A_t = A_0 * (1/2)^n)))

Here

  • A_t is the amount of the radioactive substance that remains undecayed after a time period t
  • A_0 is the initial amount of said substance
  • n is the number of half-lives that pass in the time period t

Your first goal here is to figure out the value of n. Start by rewriting the equation as

A_t/A_0 = (1/2)^n

This will be equivalent to

ln(A_t/A_0) = ln[(1/2)^n]

ln(A_t/A_0) = n * ln(1/2)

Since

ln(1/2) = ln(1) - ln(2) = - ln(2)

you can say that

n = -ln(A_t/A_0)/ln(2)

Plug in your values to find

n = - ln((0.100 color(red)(cancel(color(black)("g"))))/(0.750color(red)(cancel(color(black)("g")))))/ln(2) = 2.907

Now, you know that 2.907 half-lives must pass in order for the sample to be reduced from "0.750 g" to "0.100 g" and that radon-222 has a half-life of 3.823 days.

The number of half-lives that pass in a given period of time can be written as

color(blue)(ul(color(black)(n = "total time that passes"/"half-life" = t/t_"1/2")))

The total time t needed will be

n = t/t_"1/2" implies t = n * t_"1/2"

In your case, you will have

color(darkgreen)(ul(color(black)(t = 2.907 * "3.823 days" = "11.1 days")))

The answer is rounded to three sig figs, the number of sig figs you have for the initial and final mass of the sample.

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