The Mole Concept
2. The Mole
Learning outcomes
- I can define the mole as the SI unit for amount of substance.
- I can explain the relationship between a mole and the number of particles it contains.
- I can relate the mole to everyday counting units.
- I can distinguish between the amount of substance and mass.
- I can use the mole concept to describe quantities of substances.
What Is a Mole?
Chemists often work with enormous numbers of atoms, molecules, and ions. Writing these numbers out every time would be difficult and impractical.
Instead, chemists use a special counting unit called the mole.
A mole (mol) is the SI unit for amount of substance.
One mole contains exactly:
6.02214076×1023 particlesThis number is usually written approximately as:
6.02×1023The particles could be atoms, molecules, ions, or formula units depending on the substance.
The Mole as a Counting Unit
The mole is similar to counting units we use in everyday life.
A pair means:
2 objectsA dozen means:
12 objectsA mole means:
6.02×1023 objectsThe important idea is that these words describe numbers, not particular objects.
For example:
- 1 dozen eggs = 12 eggs
- 1 dozen pencils = 12 pencils
- 1 dozen oranges = 12 oranges
Similarly:
- 1 mol of carbon atoms = 6.02×1023 carbon atoms
- 1 mol of water molecules = 6.02×1023 water molecules
- 1 mol of sodium ions = 6.02×1023 sodium ions
The type of particle changes, but the number of particles in one mole does not.
Avogadro's Constant
The number of particles in one mole is called Avogadro's constant.
It is represented by the symbol:
NAand has the value:
NA = 6.02214076×1023/molFor most school calculations, this is rounded to:
NA = 6.02×1023/molThis means that every mole contains approximately 602,000,000,000,000,000,000,000 particles.
That is why chemists need a special counting unit!
What Does "Amount of Substance" Mean?
In chemistry, amount of substance tells us how many specified particles are present.
Its SI unit is the mole (mol).
For example: 1 mol H2O means:
6.02×1023 H2O moleculeswhile: 2 mol H2O means:
2(6.02×1023)or:
1.204×1024 H2O moleculesThe number of moles therefore tells us the amount of substance present.
Amount of Substance Is Not the Same as Mass
It is important not to confuse amount of substance with mass.
Amount of substance
Amount of substance measures the number of chemical particles.
It is measured in: moles (mol)
Mass
Mass measures the quantity of matter in a sample.
In laboratory chemistry, mass is commonly measured in: grams (g)
Two substances can contain the same number of particles but have very different masses.
For example, one mole of hydrogen molecules and one mole of oxygen molecules both contain: 6.02×1023 molecules
However, the oxygen sample has a much greater mass because an oxygen molecule is heavier than a hydrogen molecule.
Moles and Number of Particles
The relationship between moles and particles can be written as:
Number of particles = number of moles×NAor:
N=nNAwhere:
- N = number of particles
- n = amount of substance in moles
- NA = Avogadro's constant
Example: One Mole of Carbon
How many carbon atoms are present in 1 mol of carbon?
N = nNA =(1)(6.02×1023)Therefore: N = 6.02×1023 carbon atoms
Example: Two Moles of Water
How many water molecules are present in 2 mol of H₂O?
N = nNA =(2)(6.02×1023) = 1.204×1024 molecules.Example: Half a Mole of Oxygen
How many O₂ molecules are present in 0.5 mol of oxygen?
N = nNA =(0.5)(6.02×1023) = 3.01×1023 O2 moleculesNotice the relationship:
- 1 mol → 6.02×1023 particles
- 2 mol → 1.204×1024 particles
- 0.5 mol → 3.01×1023 particles
Different Substances, Same Number of Particles
One of the most important ideas about the mole is that one mole always represents the same number of particles.
| Substance. | Amount. | Number of Particles. | Type of Particle |
|---|---|---|---|
| He | 1 mol | 6.02×1023 | atoms |
| H₂O | 1 mol | 6.02×1023 | molecules |
| Na⁺ | 1 mol | 6.02×1023 | ions |
| NaCl | 1 mol | 6.02×1023 | formula units |
This is similar to saying that a dozen always contains 12 objects, regardless of what the objects are.
Why Is the Mole So Useful?
The mole connects the microscopic world of atoms and molecules with the macroscopic world that we can measure in a laboratory.
Chemists cannot normally count individual molecules directly.
Instead, they can measure a sample and describe its quantity in moles.
This creates an important connection:
particles⟷moles⟷measurable samplesLater, we can extend this relationship to include mass:
particles⟷moles⟷massThis relationship is one of the foundations of quantitative chemistry.
Did You Know?
A mole is an unimaginably large number.
If you had a mole of grains of sand, there would be vastly more grains than all the sand found on Earth's beaches.
Chemists need such a huge counting unit because atoms and molecules are extraordinarily small.
Key Vocabulary
Mole (mol) — The SI unit for amount of substance.
Amount of substance — A measure related to the number of specified particles present, measured in moles.
Avogadro's constant — The number of particles per mole, 6.02214076×1023/mol.
Particle — A general term that may refer to an atom, molecule, ion, or formula unit.
Mass — A measure of the quantity of matter in a sample, commonly measured in grams in chemistry laboratories.
Formula unit — The simplest whole-number ratio of ions in an ionic compound.
Key Takeaways
- The mole (mol) is the SI unit for amount of substance.
- One mole contains exactly 6.02214076×1023 specified particles.
- This value is called Avogadro's constant.
- A mole is a counting unit, just like a dozen, but represents a much larger number.
- One mole can describe atoms, molecules, ions, or formula units.
- Amount of substance and mass are different quantities.
- Different substances can contain the same number of particles but have different masses.
- The relationship between particles and moles is: N=nNA
- The mole provides an essential link between individual chemical particles and quantities that chemists can measure in the laboratory.