Question #58689

1 Answer
Stefan V.
Apr 12, 2016

"7.5 g"

Explanation:

The nuclear half-life of a given radioactive substance tells you how much time is needed until half of the atoms present in the sample undergo radioactive decay.

This means that if you start with an initial sample A_0, you can say that you will be left with

A_0 * 1/2 = A_0/2 -> after the passing of one half-life

A_0/2 * 1/2 = A_0/4 -> after the passing of two half-lives

A_0/4 * 1/2 = A_0/8 -> after the passing of three half-lives

A_0/8 * 1/2 = A_0/16 -> after the passing of four half-lives
vdots

and so on. Since the mass of the sample gets halved with every passing half-life, you can say that you have

color(blue)(|bar(ul(color(white)(a/a)A = A_0 * 1/2^n color(white)(a/a)|)))

Here

A - the amount that remains after the passing of a given period of time
A_0 - the initial mass of the sample
n - the number of half-lives that pass in a given period of time

You can find n by dividing the time that passed by the half-life of the sample.

color(blue)(|bar(ul(color(white)(a/a)n = "how much time passed"/"half-life"color(white)(a/a)|)))

In your case, you're interested in finding out how much radioactive material remains after the passing of 6000 years, so n will be equal to

n = (6000 color(red)(cancel(color(black)("years"))))/(2000color(red)(cancel(color(black)("years")))) = 3

So, after the passing of 3 half-lives, you will be left with

A = "60 g" * 1/2^3 = color(green)(|bar(ul(color(white)(a/a)"7.5 g"color(white)(a/a)|)))

I'll leave the answer rounded to two sig figs.

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