Avogadro Example

Avogadro's Law Definition And Example
Avogadro Software Examples
Avogadro Real Life Example

Skills to Develop

Make sure you thoroughly understand the following essential ideas:

Define Avogadro's number and explain why it is important to know.
Define the mole. Be able to calculate the number of moles in a given mass of a substance, or the mass corresponding to a given number of moles.
Define molecular weight, formula weight, and molar mass; explain how the latter differs from the first two.
Be able to find the number of atoms or molecules in a given weight of a substance.
Find the molar volume of a solid or liquid, given its density and molar mass.
Explain how the molar volume of a metallic solid can lead to an estimate of atomic diameter.

Avogadro is a molecule editor and visualizer, and one of the most advanced open source scientific software tools. It features many capabilities that can be useful in teaching as education can be much more effective when theory is combined with the actual depiction of realistic models.

The chemical changes we observe always involve discrete numbers of atoms that rearrange themselves into new configurations. These numbers are HUGE— far too large in magnitude for us to count or even visualize, but they are still numbers, and we need to have a way to deal with them. We also need a bridge between these numbers, which we are unable to measure directly, and the weights of substances, which we do measure and observe. The mole concept provides this bridge, and is central to all of quantitative chemistry.

Counting Atoms: Avogadro's Number

Owing to their tiny size, atoms and molecules cannot be counted by direct observation. But much as we do when 'counting' beans in a jar, we can estimate the number of particles in a sample of an element or compound if we have some idea of the volume occupied by each particle and the volume of the container. Once this has been done, we know the number of formula units (to use the most general term for any combination of atoms we wish to define) in any arbitrary weight of the substance. The number will of course depend both on the formula of the substance and on the weight of the sample. However, if we consider a weight of substance that is the same as its formula (molecular) weight expressed in grams, we have only one number to know: Avogadro's number.

Avogadro's number

Examples of Avogadro’s law in Real Life Applications As you blow up a football, you are forcing more gas molecules into it. The more molecules, the greater the volume.
If the container holding the gas is rigid rather than flexible, pressure can be substituted for volume in Avogadro's Law. Adding gas to a rigid container makes the pressure increase. 1 A balloon has been filled to a volume of 1.90 L with 0.0920 mol of helium gas.

Avogadro's number is known to ten significant digits:

[N_A = 6.022141527 times 10^{23}.]

However, you only need to know it to three significant figures:

[N_A approx 6.02 times 10^{23}. label{3.2.1}]

Avogadro's Law Definition And Example

So (6.02 times 10^{23}) of what? Well, of anything you like: apples, stars in the sky, burritos. However, the only practical use for (N_A) is to have a more convenient way of expressing the huge numbers of the tiny particles such as atoms or molecules that we deal with in chemistry. Avogadro's number is a collective number, just like a dozen. Students can think of (6.02 times 10^{23}) as the 'chemist's dozen'.

Before getting into the use of Avogadro's number in problems, take a moment to convince yourself of the reasoning embodied in the following examples.

Example (PageIndex{1}): Mass ratio from atomic weights

The atomic weights of oxygen and carbon are 16.0 and 12.0 atomic mass units ((u)), respectively. How much heavier is the oxygen atom in relation to carbon?

Solution

Atomic weights represent the relative masses of different kinds of atoms. This means that the atom of oxygen has a mass that is

[dfrac{16, cancel{u}}{12, cancel{u}} = dfrac{4}{3} ≈ 1.33 nonumber]

as great as the mass of a carbon atom.

Example (PageIndex{2}): Mass of a single atom

The absolute mass of a carbon atom is 12.0 unified atomic mass units ((u)). How many grams will a single oxygen atom weigh?

Solution

The absolute mass of a carbon atom is 12.0 (u) or

[12,cancel{u} times dfrac{1.6605 times 10^{–24}, g}{1 ,cancel{u}} = 1.99 times 10^{–23} , g text{ (per carbon atom)} nonumber]

The mass of the oxygen atom will be 4/3 greater (from Example (PageIndex{1})):

[ left( dfrac{4}{3} right) 1.99 times 10^{–23} , g = 2.66 times 10^{–23} , g text{ (per oxygen atom)} nonumber]

Alternatively we can do the calculation directly like with carbon:

[16,cancel{u} times dfrac{1.6605 times 10^{–24}, g}{1 ,cancel{u}} = 2.66 times 10^{–23} , g text{ (per oxygen atom)} nonumber]

Example (PageIndex{3}): Relative masses from atomic weights

Suppose that we have (N) carbon atoms, where (N) is a number large enough to give us a pile of carbon atoms whose mass is 12.0 grams. How much would the same number, (N), of oxygen atoms weigh?

Solution

We use the results from Example (PageIndex{1}) again. The collection of (N) oxygen atoms would have a mass of

[dfrac{4}{3} times 12, g = 16.0, g. nonumber]

Exercise (PageIndex{1})

What is the numerical value of (N) in Example (PageIndex{3})?

Answer

Using the results of Examples (PageIndex{2}) and (PageIndex{3}).

[N times 1.99 times 10^{–23} , g text{ (per carbon atom)} = 12, g nonumber]

[N = dfrac{12, cancel{g}}{1.99 times 10^{–23} , cancel{g} text{ (per carbon atom)}} = 6.03 times 10^{23} text{atoms} nonumber ]

There are a lot of atoms in 12 g of carbon.

Things to understand about Avogadro's number

It is a number, just as is 'dozen', and thus is dimensionless.
It is a huge number, far greater in magnitude than we can visualize
Its practical use is limited to counting tiny things like atoms, molecules, 'formula units', electrons, or photons.
The value of N_A can be known only to the precision that the number of atoms in a measurable weight of a substance can be estimated. Because large numbers of atoms cannot be counted directly, a variety of ingenious indirect measurements have been made involving such things as Brownian motion and X-ray scattering.
The current value was determined by measuring the distances between the atoms of silicon in an ultrapure crystal of this element that was shaped into a perfect sphere. (The measurement was made by X-ray scattering.) When combined with the measured mass of this sphere, it yields Avogadro's number. However, there are two problems with this:
- The silicon sphere is an artifact, rather than being something that occurs in nature, and thus may not be perfectly reproducible.
- The standard of mass, the kilogram, is not precisely known, and its value appears to be changing. For these reasons, there are proposals to revise the definitions of both N_A and the kilogram.

Moles and their Uses

Avogadro Software Examples

The mole (abbreviated mol) is the the SI measure of quantity of a 'chemical entity', which can be an atom, molecule, formula unit, electron or photon. One mole of anything is just Avogadro's number of that something. Or, if you think like a lawyer, you might prefer the official SI definition:

Definition: The Mole

The mole is the amount of substance of a system which contains as many elementary entities as there are atoms in 0.012 kilogram of carbon 12

Avogadro's number (Equation ref{3.2.1}) like any pure number, is dimensionless. However, it also defines the mole, so we can also express N_A as 6.02 × 10²³ mol^–1; in this form, it is properly known as Avogadro's constant. This construction emphasizes the role of Avogadro's number as a conversion factor between number of moles and number of 'entities'.

Example (PageIndex{4}): number of moles in N particles

How many moles of nickel atoms are there in 80 nickel atoms?

Solution

[dfrac{80 ;atoms}{6.02 times 10^{23} ; atoms; mol^{-1}} = 1.33 times 10^{-22} mol nonumber]

Is this answer reasonable? Yes, because 80 is an extremely small fraction of (N_A).

Molar Mass

The atomic weight, molecular weight, or formula weight of one mole of the fundamental units (atoms, molecules, or groups of atoms that correspond to the formula of a pure substance) is the ratio of its mass to 1/12 the mass of one mole of C¹² atoms, and being a ratio, is dimensionless. But at the same time, this molar mass (as many now prefer to call it) is also the observable mass of one mole (N_A) of the substance, so we frequently emphasize this by stating it explicitly as so many grams (or kilograms) per mole: g mol^–1.

It is important always to bear in mind that the mole is a number and not a mass. But each individual particle has a mass of its own, so a mole of any specific substance will always correspond to a certain mass of that substance.

Example (PageIndex{5}): Boron content of borax

Borax is the common name of sodium tetraborate, (ce{Na2B4O7}).

how many moles of boron are present in 20.0 g of borax?
how many grams of boron are present in 20.0 g of borax?

Solution

The formula weight of (ce{Na2B4O7}) so the molecular weight is:

[(2 times 23.0) + (4 times 10.8) + (7 times 16.0) = 201.2 nonumber]

20 g of borax contains (20.0 g) ÷ (201 g mol^–1) = 0.10 mol of borax, and thus 0.40 mol of B.
0.40 mol of boron has a mass of (0.40 mol) × (10.8 g mol^–1) = 4.3 g.

Example (PageIndex{6}): Magnesium in chlorophyll

The plant photosynthetic pigment chlorophyll contains 2.68 percent magnesium by weight. How many atoms of Mg will there be in 1.00 g of chlorophyll?

Solution

Each gram of chlorophyll contains 0.0268 g of Mg, atomic weight 24.3.

Number of moles in this weight of Mg: (.0268 g) / (24.2 g mol^–1) = 0.00110 mol
Number of atoms: (0.00110 mol) × (6.02E23 mol^–1) = (6.64 times 10^{20})

Is this answer reasonable? (Always be suspicious of huge-number answers!) Yes, because we would expect to have huge numbers of atoms in any observable quantity of a substance.

Molar Volume

This is the volume occupied by one mole of a pure substance. Molar volume depends on the density of a substance and, like density, varies with temperature owing to thermal expansion, and also with the pressure. For solids and liquids, these variables ordinarily have little practical effect, so the values quoted for 1 atm pressure and 25°C are generally useful over a fairly wide range of conditions. This is definitely not the case with gases, whose molar volumes must be calculated for a specific temperature and pressure.

Example (PageIndex{7}): Molar Volume of a Liquid

Methanol, CH₃OH, is a liquid having a density of 0.79 g per milliliter. Calculate the molar volume of methanol.

Solution

The molar volume will be the volume occupied by one molar mass (32 g) of the liquid. Expressing the density in liters instead of mL, we have

[V_M = dfrac{32; g; mol^{–1}}{790; g; L^{–1}}= 0.0405 ;L ;mol^{–1} nonumber]

The molar volume of a metallic element allows one to estimate the size of the atom. The idea is to mentally divide a piece of the metal into as many little cubic boxes as there are atoms, and then calculate the length of each box. Assuming that an atom sits in the center of each box and that each atom is in direct contact with its six neighbors (two along each dimension), this gives the diameter of the atom. The manner in which atoms pack together in actual metallic crystals is usually more complicated than this and it varies from metal to metal, so this calculation only provides an approximate value.

Example (PageIndex{8}): Radius of a Strontium Atom

The density of metallic strontium is 2.60 g cm^–3. Use this value to estimate the radius of the atom of Sr, whose atomic weight is 87.6.

Solution

The molar volume of Sr is:

[dfrac{87.6 ; g ; mol^{-1}}{2.60; g; cm^{-3}} = 33.7; cm^3; mol^{–1}]

The volume of each 'box' is'

[dfrac{33.7; cm^3 mol^{–1}} {6.02 times 10^{23}; mol^{–1}} = 5.48 times 10^{-23}; cm^3]

The side length of each box will be the cube root of this value, (3.79 times 10^{–8}; cm). The atomic radius will be half this value, or

[1.9 times 10^{–8}; cm = 1.9 times 10^{–10}; m = 190 pm]

Note: Your calculator probably has no cube root button, but you are expected to be able to find cube roots; you can usually use the x^y button with y=0.333. You should also be able estimate the magnitude of this value for checking. The easiest way is to express the number so that the exponent is a multiple of 3. Take (54 times 10^{-24}), for example. Since 3³=27 and 4³ = 64, you know that the cube root of 55 will be between 3 and 4, so the cube root should be a bit less than 4 × 10^–8.

So how good is our atomic radius? Standard tables give the atomic radius of strontium is in the range 192-220 pm.

Contributors

Stephen Lower, Professor Emeritus (Simon Fraser U.) Chem1 Virtual Textbook

Avogadro Real Life Example

Question: Three balloons are filled with different amounts of an ideal gas. One balloon is filled with 3 moles of the ideal gas, filling the balloon to 30 L.

a) One balloon contains 2 moles of gas. What is the volume of the balloon?

b) One balloon encloses a volume of 45 L. How many moles of gas are in the balloon?

Answer:

Avogadro’s law says the volume (V) is directly proportional to the number of molecules of gas (n) at the same temperature.

n ∝ V

This means the ratio of n to V is equal to a constant value.

Since this constant never changes, the ratio will always be true for different amounts of gas and volumes.

where
ni = initial number of molecules
Vi = initial volume
nf = final number of molecules
Vf = final volume.

Part a) One balloon has 3 moles of gas in 30 L. The other has 2 moles in an unknown volume. Plug these values into the above ratio:

Solve for Vf

(3 mol)Vf = (30 L)(2 mol)
(3 mol)Vf = 60 L⋅mol
Vf = 20 L

You would expect less gas to take up a smaller volume. In this case, 2 moles of gas only took up 20 L.

Part b) This time, the other balloon has a known volume of 45 L and an unknown number of moles. Start with the same ratio as before:

Use the same known values as in part a, but use 45 L for Vf.

Solve for nf

(3 mol)(45 L) = (30L)nf
135 mol⋅L = (30L)nf
nf = 4.5 moles

The larger volume means there is more gas in the balloon. In this case, there are 4.5 moles of the ideal gas in the larger balloon.

An alternative method would be to use the ratio of the known values. In part a, the known values were the number of moles. There was the second balloon had 2/3 the number of moles so it should have 2/3 of the volume and our final answer is 2/3 the known volume. The same is true of part b. The final volume is 1.5 times larger so it should have 1.5 times as many molecules. 1.5 x 3 = 4.5 which matches our answer. This is a great way to check your work.