-
- [Instructor] Let's
solve a few numerical on
-
Avogadro number and moles.
-
Here's the first one.
-
How many glucose molecules
are in 2.37 moles of glucose?
-
Let's quickly remind
ourselves what moles are.
-
Moles are like dozen.
-
Just like how one dozen equals 12,
-
a mole represents an
Avogadro number of things.
-
A dozen eggs equals 12 eggs.
-
A dozen carrots means 12 carrots
-
Similarly, a mole of eggs would
represent these many eggs.
-
A mole of carrots would
represent these many carrots.
-
A mole of glucose would represent
-
these many glucose molecules, okay?
-
So one mole of glucose equals
-
these many molecules of glucose,
-
or if you have two moles of glucose,
-
it will be twice the amount.
-
If you have three moles, it
will be thrice the amount,
-
and so on and so forth.
-
Now, what are we given?
-
We are given, there are
2.37 moles of glucose,
-
and we are asked how many
glucose molecules are there?
-
Now, since one mole equals
these many molecules,
-
2.37 moles of glucose
would just be 2.37 times
-
these many molecules.
-
Intuitively, that makes sense, right?
-
But guess what?
-
This is a slightly simple numerical,
-
and that's why it's easier
to do it in our heads,
-
and we can do it intuitively,
-
but in general, there might
be more conversions required,
-
more calculations needed.
-
So a better way to do this
is to think in terms of
-
conversions factors, okay?
-
So we can say that, hey, we
are given moles of glucose,
-
and we need to go, we
need to convert from moles
-
to molecules.
-
So how do we do that, okay?
-
So here's how we do it.
-
We start with what's given to us.
-
We are given 2.37 moles of glucose.
-
Now, from moles of glucose,
-
how do we go to molecules of glucose?
-
Well, for that we'll
build a conversion factor.
-
And here's how I think about it.
-
Since I want glucose molecules,
-
my conversion factor should have
-
molecules of glucose in the numerator.
-
And since I want to get rid of moles,
-
my moles should be in the denominator.
-
So this is what my
conversion factor looks like,
-
molecules per mole.
-
But how many molecules per mole?
-
Well, I know that there are 6.022
-
times 10 to the 23 molecules per mole.
-
So I can fill this in,
-
and now have built my conversion factor.
-
So look, the moles of glucose cancels out,
-
and what I now end up with
is molecules of glucose.
-
So I just need to plug
this in my calculator.
-
So 2.37 times 6.022 times 10 to the 23.
-
And the way you input that
is you use this EE, okay?
-
Not this one, this one.
-
10 to the 23, so you put 23.
-
And that's it.
-
So equals 1.427,
-
which I can round it off to
three significant figures
-
because there are three
significant figures here.
-
So 1.43 times 10 to the 24.
-
Don't forget this, okay?
-
So 1.43 times 10 to the 24.
-
And look, as we saw earlier,
-
it makes intuitive sense as well.
-
One mole has many molecules.
-
So 2.37 moles will have 2.37
times these many molecules.
-
But now let's see the true power
-
of thinking it this way, okay?
-
Let's say the question was
how many atoms of hydrogen
-
are in 2.37 moles of glucose?
-
How would we solve this?
-
Well, again, let's think
about this intuitively.
-
We already know that 2.37 moles of glucose
-
has these many molecules,
-
so have these many molecules of glucose.
-
But now I'm asked how many
atoms of hydrogen are there
-
in these many molecules of glucose?
-
How do I do that?
-
Well for that,
-
I know that if I have
one molecule of glucose,
-
then there are 12 hydrogen atoms.
-
If I take two molecules of
glucose, I will have 12 plus 12.
-
That is 12 times 2 hydrogen atoms.
-
If I take three molecules of glucose,
-
12 times 3 hydrogen atoms.
-
So if I take these many
molecules of glucose,
-
it'll be 12 times these
many atoms of hydrogen.
-
Makes sense, right?
-
But over here, we first calculate
the molecules of glucose,
-
and then we are now calculating
the atoms of hydrogen.
-
So multiple times we'll have
to crunch in the numbers
-
in the calculator.
-
But what if I had to do this from scratch?
-
Not worry about the earlier calculations.
-
Then again, if we think
in terms of conversions
-
and building conversion factors,
-
we can calculate very efficiently.
-
So again, we start with
what's given to us.
-
We are given 2.37 moles of glucose,
-
and then we try to go from
moles to molecules of glucose.
-
And I know how to do that.
-
I need molecules in the numerator,
moles in the denominator.
-
So Avogadro number.
-
So I know there are these many molecules
-
of glucose per mole.
-
And so then this cancels out.
-
Now comes the question,
-
how do I go from molecules of
glucose to atoms of hydrogen?
-
I need another conversion factor.
-
I need atoms of hydrogen in the numerator
-
because that's what I want to end up with,
-
and I need molecules of
glucose in the denominator
-
so that I can cancel it with this one.
-
So my new conversion factor
would be atoms of hydrogen
-
per molecules of glucose,
-
and I know how much that is.
-
12 atoms of hydrogen
per molecule of glucose.
-
And so now I can cancel the
molecules of glucose out.
-
And look, I'm done.
-
I end up with atoms of hydrogen.
-
And now in one shot I can crunch
-
all of these numbers in my calculator.
-
So 2.37 times 6.022
-
times 10 to the 23.
-
And the way you do that,
remember you use this one,
-
to the 23 times 12 divided by 1.
-
So that's it.
-
And again, we now have
to round this off to
-
how many significant figures?
-
Well, there are three here.
-
There are four here.
-
So the minimum three significant figures.
-
But wait a second, what about this one?
-
Aren't there two significant figures here?
-
No, because this is not a measurement.
-
Every glucose molecule has
exactly 12 hydrogen atoms.
-
So this is not a measurement,
-
and therefore our significant figures
-
are not limited by this number.
-
It's limited by this number.
-
So there are three significant figures.
-
So we have to round it off
to three significant figures.
-
So it would be 1.71 times
10 to their power 25.
-
All right, let's kick
things up a little bit.
-
Let's go to the next question.
-
How many formula units
of calcium carbonate
-
are in four grams of calcium carbonate?
-
Alright, first things first,
what exactly are formula units?
-
I used to get always confused with them.
-
So let's clarify that.
-
When we're dealing with non-metals,
-
which are usually covalently bonded,
-
we have individual molecules.
-
So for example, if you
look inside a glucose,
-
then we can say that, hey,
there is this glucose molecule,
-
and there's that glucose molecules.
-
You know, they're made of molecules, okay?
-
You can identify individual molecules,
-
and we can talk about them.
-
But when it comes to ionic
compounds like calcium carbonate,
-
or let's take a simpler one,
say sodium chloride, okay,
-
because it's much simpler,
-
then you don't find individual
molecules over there.
-
If you were to look inside them,
-
you'll probably see a crystal structure
-
that looks like this.
-
Okay, but if there are
no molecules over here,
-
then what does this represent?
-
Or over here, if you look at it,
-
what does it mean to say that
-
there are three oxygen atoms over here?
-
What does it represent?
-
Well, think about it this way, okay?
-
Let's start with the sodium chloride.
-
If I were to take a
chunk of sodium chloride,
-
there are lots and lots of sodium
-
and you know, sodium
cations and chlorine anions,
-
but they will be in the
ratio one is to one.
-
That's what it means to write it this way.
-
Similarly, if I were to take
a chunk of calcium carbonate,
-
its crystal structure is
much more complicated.
-
That's why I didn't draw that over here.
-
But if I were to take a
chunk of calcium carbonate,
-
then I'll find that the ratio
of the amount of calcium
-
to the amount of carbon
to the amount of oxygen
-
that I'll find in that chunk
is one is to one is to three.
-
There'll be thrice as many oxygen atoms
-
as carbon or as calcium.
-
That's what it means.
-
So a formula unit is a representation
-
of the relative ratios
of the different atoms
-
or elements that make up your
ionic compound, all right?
-
But more importantly,
-
how does it change things
when it comes to the mole?
-
The answer is it doesn't.
-
See, over here when you're
dealing with the mole,
-
we would say that a
mole of glucose would be
-
Avogadro number of glucose molecules.
-
Over here we would say a mole would be
-
an Avogadro number of
formula units, and that's it.
-
So it doesn't change anything, okay?
-
All right, so we need to
find how many formula units
-
of calcium carbonate are
-
in four grams of calcium carbonate, okay?
-
So this time we are given the
mass of the calcium carbonate.
-
So look, this time we
need to convert from mass
-
to formula units.
-
How do we do that?
-
Well, here's what I'm thinking.
-
If we can convert from
mass to moles, we are done.
-
If I can figure out how many
moles of calcium carbonate
-
this represents, we are done.
-
Because then just like what we did
-
in our previous numerical, we
went from moles to molecules
-
in the same way using the Avogadro number.
-
In the same way over here we can go from
-
moles to formula units.
-
So the big question is how do I go from,
-
you know, grams to moles?
-
And we can figure that out
using the periodic table.
-
See, the periodic table
will give me the molar mass
-
of individual elements.
-
So for example, here,
calcium has an atomic,
-
an average atomic mass of 40.08 units.
-
This means that one mole of calcium
-
will have a mass of 40.08 grams.
-
Remember that mole is a
conversion from U to grams, okay?
-
So I know the molar mass of calcium.
-
It's 40.08 grams per mole.
-
Similarly carbon, 12.01 grams per mole.
-
Oxygen, 16 grams per mole.
-
So what will be the molar
mass of calcium carbonate?
-
What will be the mass of one
mole of calcium carbonate?
-
Well, one mole of calcium
carbonate will have
-
one mole of calcium, one mole of carbon,
-
and three moles of oxygen.
-
So it'll be a great
idea to pause the video
-
and see if you can use these
numbers to calculate first
-
the molar mass of calcium carbonate.
-
All right, here's how we can do it.
-
The molar mass of calcium carbonate,
-
meaning one mole of calcium carbonate,
-
its mass will be the mass
of one mole of calcium
-
plus mass of one mole of carbon,
-
plus three times the mass
of one mole of oxygen
-
because there are three over here.
-
So you plug this into our calculator.
-
Let me just do this first
-
because there's a
multiplication over here.
-
So it's 3 times 16 plus 12.01 plus 40.08
-
equals a 100.09.
-
We'll not round it off right now
-
because we are still in the
middle of the calculation.
-
So its molar mass is a
100.09 grams per mole.
-
So I can use that as a conversion factor
-
to go from grams to moles.
-
And then I know the Avogadro number.
-
From there I can go from
moles to formula units.
-
Again, it will be a great
idea to pause the video
-
and see if you can try
this yourself first.
-
All right, let's do it.
-
So we'll start with what's given to us.
-
We are given four grams
of calcium carbonate.
-
Now, to convert this into moles,
-
I need to have moles in the
numerator, my conversion factor,
-
and grams in the denominator
to cancel this out.
-
So I need moles per grams,
-
moles of calcium carbonate
per gram of calcium carbonate.
-
And I have that conversion
factor over here.
-
I just have to do a reciprocal
-
because I want the mole in the numerator.
-
So I will write this as one
mole of calcium carbonate
-
per 100.09 grams of calcium carbonate.
-
You see why I wrote it that way,
-
so that now I can cancel this.
-
So now this gives me the moles.
-
Now how do I go from
moles to formula units?
-
Build a new conversion factor.
-
I need a formula unit in the numerator,
-
mole in the denominator.
-
So how many formula
units do I have per mole?
-
Well, the Avogadro number.
-
I have Avogadro number of formula units
-
of calcium carbonate per
mole of calcium carbonate.
-
And boom, this cancels out.
-
Let me cancel out slightly differently.
-
Okay, this cancels out.
-
And there you have it.
-
I am now left with formula
unit of calcium carbonate.
-
I can plug this into the calculator now.
-
So it's 4 times 1 times
6.022 times 10 to the 23.
-
So again, we'll use
the exponent over here,
-
23 divided by 100.09.
-
Divided by 100.09.
-
This gives us 2.406.
-
And again, we'll round it off
to three significant figures.
-
That's the minimum one over here.
-
So 2.41 times, don't forget this.
-
2.41 times 10 to the power 22.
-
There you have it.
-
That many formula units
of calcium carbonate.
-
Okay, here's the last question.
-
How many oxygen atoms
-
are in four grams of calcium carbonate?
-
Again, pause the video and
see if you can do this.
-
This is the last one.
-
Okay, this is just like
the previous numerical.
-
We already know four
grams of calcium carbonate
-
has these many formula units,
-
and we know a single formula
unit has three oxygen atoms.
-
So these many formula units
will have three times this much.
-
That's it.
-
That's our answer, three times this much.
-
But again, if this was asked
to us to do it from scratch,
-
how would we do it?
-
Well, we'll start from here.
-
So we'll do all of this.
-
So let me just copy and
paste that over here,
-
and then we'll have one
more conversion factor
-
that'll help me cancel our formula units
-
and have oxygen atoms.
-
So over here I would need
oxygen atoms in the numerator
-
and formula units of calcium
carbonate in the denominator.
-
How many oxygen atoms do I have
-
per formula unit of calcium carbonate?
-
Three.
-
So my last conversion factor
would be three atoms of oxygen
-
per formulate of calcium carbonate.
-
This cancels out.
-
And I'm done.
-
And again, we can crunch
it in one last time.
-
4 times 6.022 times 10 to the 23.
-
So use the exponent, 23
times 3 divided by 100.09.
-
That's it.
-
So that gives us 7.219.
-
Again, rounding it off to three
significant figures, 7.22.
-
Don't forget this.
-
Times 10 to the power 22 atoms of oxygen.
-
And this is the same number as multiplying
-
this number by three.
-
But if we were asked from scratch
-
and we didn't have this number,
-
this is how we could
do it in just one shot.
Khan Academy
