Two videos ago, we learned about half-lives. And we saw that they're good if we are trying to figure out how much of a compound we have left after one half-life, or two half-lives, or three half-lives. We can just take half of the compound at every period. But it's not as useful if we're trying to figure out how much of a compound we have after one half of a half-life, or after one day, or 10 seconds, or 10 billion years. And to address that issue in the last video, I proved that it involved a little bit of Of sophisticated math.
And if you haven't taken calculus, you can really just skip that video. You don't have to watch it for an intro math class. But if you're curious, that's where we prove the following formula, that at any given point of time, if you have some decaying atom, some element, it can be described as the amount of element you have at any period of time is equal to the amount you started off with times e to some constant.
In the last video I used lambda. I could use k this time, minus k times t. And then for a particular element with a particular half-life, you can just solve for the k and then apply it to your problem.
So let's do that in this video just so that all of these variables can become a little bit more concrete. So let's figure out the general formula for carbon. Carbon-14, that's the one that we addressed in the half-life.
We saw that carbon-14 has a half-life of 5,730 years. So let's see if we can somehow take this information and apply it. to this equation.
So this tells us that after one half-life, so t is equal to 5,730, n of 5,730 is equal to the amount we start off with, so we're starting off with n sub 0 times e to the minus, wherever you see the t, you put the 5,730, so minus k. times 5,730. That's how many years have gone by.
And half-life tells us that after 5,730 years, we'll have half of our initial sample left. So we'll have half of our initial sample left. So if we try to solve this equation for k, what do we get?
Divide both sides by n0. Get rid of that variable. And then we're left with e to the minus 5,730k.
I'm just switching these two around. Is equal to 1 half. If we take the natural log of both sides, what do we get? We get natural log of e to anything.
The natural log of e to the a is just a. So the natural log of this is minus 5,730k is equal to the natural log of 1 half. I just took the natural log of both sides. Natural log and natural log of both sides of that. And so to solve for k.
We could just say k is equal to the natural log of 1 half over minus 5,730. So it equals 1.2 times 10 to the minus 4. So now we have the general formula for carbon-14, given its half-life. At any given point in time after our starting point, so this is for, let's call this for carbon-14, for C-14.
The amount of carbon-14 we're going to have left is going to be the amount that we started with times e to the minus k. k we just solved for. 1.2 times 10 to the minus 4 times the amount of time that has passed by. This is our formula for carbon.
If we were doing it for carbon-14, if we were doing this for some other element, we would use that element's half-life to figure out how much we're going to have at any given period of time, to figure out the k value. So let's use this to solve a problem. Let's say that I start off with 300 grams of carbon, carbon-14. And I want to know how much do I have after 2,000 years? How much do I have?
Well, I just plug into the formula. N of 2,000 is equal to the amount that I started off with, 300 grams, times e to the minus 1.2 times 10 to the minus 4, times t, times 2,000. So what is that?
So this is equal to 236 grams. So just like that, using this exponential decay formula, I was able to figure out. how much of the carbon I have after kind of an unusual period of time, a non-half-life period of time. Let's do another one. Let's go the other way around.
Let's say I'm trying to figure out. Let's say I start off with 400 grams of C-14. And I want to know how long, so I want to know a certain amount of time, does it take for me to get to 350 grams of C-14? So you just say that. 350 grams is how much I'm ending up with.
It's equal to the amount that I started off with, 400 grams, times e to the minus k. That's minus 1.2 times 10 to the minus 4, times time. And now we solve for time. So you get 0.875 is equal to e to the minus 1.2 times 10 to the minus 4t.
You take the natural log of both sides. You get the natural log of 0.8. 0.875 is equal to the natural log of e to anything is just the anything, so it's equal to minus 1.2 times 10 to the minus 4t. And so t is equal to this divided by 1.2 times 10 to the minus 4. So the natural log, 0.875 divided by minus 1.2 times 10 to the minus 4 is equal to the amount of time it would take us to get from 400 grams to 350. My cell phone is ringing. Let me turn that off.
To 350. So let me do the math. So this is equal to 1,112 years to get from 400 to 350 grams of my substance. This might seem a little complicated, but if there's one thing you just have to do, is you just have to remember this formula.