Suppose you find a rock originally made of potassium-40, half of which decays into argon-40 every 1.25 billion years. You open the rock and find 31 atoms of argon-40 for every atom of potassium-40. How long ago did the rock form?

Question

Suppose you find a rock originally made of potassium-40, half of which decays into argon-40 every 1.25 billion years. You open the rock and find 31 atoms of argon-40 for every atom of potassium-40. How long ago did the rock form?

It's for my astronomy class.

1 Answer

Impact of this question

79731 views around the world

You can reuse this answer
Creative Commons License

Answer 1 · 2017-10-07T15:03:06

Here's what I got.

Explanation:

The idea here is that the ratio that exists between the number of atoms of argon-40 and the number of atoms of potassium-40 will give you the number of half-lives that passed.

As you know, the half-life of a radioactive nuclide tells you the time needed for half of the atoms of said nuclide to undergo radioactive decay.

In your case, you know that potassium-40 has a half-life of $1.25$ billion years because that's how long it takes for half of the number of atoms present in the sample to decay to argon-40.

Now, let's say that your sample started with $A_"K-40"$ atoms of potassium-40 and $0$ atoms of argon-40.

You can thus say that the sample will contain--keep in mind that the atoms of potassium that decay form argon-40!

After $color(red)(1)$ half-life

$1/2 * A_"K-40" = A_"K-40"/2^color(red)(1) ->$ atoms of potassium-40

$A_"K-40" - A_"K-40"/2^color(red)(1) ->$ atoms of argon-40

After $color(red)(2)$ half-lives

$1/2 * A_"K-40"/2^1 = A_"K-40"/2^color(red)(2) ->$ atoms of potassium-40

$A_"K-40" - A_"K-40"/2^color(red)(2) ->$ atoms of argon-40

After $color(red)(3)$ half-lives

$1/2 * A_"K-40"/2^2 = A_"K-40"/2^color(red)(3) ->$ atoms of potassium-40

$A_"K-40" - A_"K-40"/2^color(red)(3) ->$ atoms of argon-40

At this point, we can use this pattern to say that after $color(red)(n)$ half-lives pass, the sample will contain

$A_"K-40"/2^color(red)(n) ->$ atoms of potassium-40

$1 - A_"K-40"/2^color(red)(n) ->$ atoms of argon-40

Now, you know that sample contains $31$ atoms of argon-40 for every $1$ atom of potassium-40, which means that you have

$(A_"K-40" - A_"K-40"/2^color(red)(n))/(A_"K-40"/(2^color(red)(n))) = 31$

This is equivalent to

$(color(blue)(cancel(color(black)(A_"K-40"))) - color(blue)(cancel(color(black)(A_"K-40")))/2^color(red)(n))/(color(blue)(cancel(color(black)(A_"K-40")))/(2^color(red)(n))) = 31$

$(2^color(red)(n) - 1)/color(blue)(cancel(color(black)(2^color(red)(n)))) * color(blue)(cancel(color(black)(2^color(red)(n))))/1 = 31$

which gives you

$2^color(red)(n) = 32$

Since

$32 = 2^5$

you can say that

$2^color(red)(n) = 2^5 implies color(red)(n) = 5$

This means that $5$ half lives must pass in order for the sample to contain $31$ atoms of argon-40 for every $1$ atom of potassium-40.

Consequently, you can say that the age of the rock is

$5 color(red)(cancel(color(black)("half-lives"))) * "1.25 billion years"/(1color(red)(cancel(color(black)("half-life")))) = color(darkgreen)(ul(color(black)("6.25 billion years")))$

I'll leave the answer rounded to three sig figs, but keep in mind that you have two significant figures for the number of atoms of argon-40 present per atom of potassium-40.

Science

Math

Humanities

... and beyond

Suppose you find a rock originally made of potassium-40, half of which decays into argon-40 every 1.25 billion years. You open the rock and find 31 atoms of argon-40 for every atom of potassium-40. How long ago did the rock form?

It's for my astronomy class.

1 Answer

Explanation:

Related questions

Impact of this question