5. Converting Between Moles and Particles

Learning outcomes
  • I can convert between moles and numbers of particles using Avogadro's number.
  • I can convert between mass and moles using molar mass.
  • I can calculate the mass of a substance from a given number of moles.
  • I can determine the number of particles in a sample from its mass.
  • I can solve multi-step problems involving moles, mass, and particles.

Converting Between Moles and Particles

Chemistry often requires us to move between three different ways of describing an amount of substance:

  • mass
  • moles
  • number of particles

These quantities are connected by two important ideas:

Avogadro's number = 6.022 × 10²³ particles per mole

Molar mass = mass of one mole of a substance, in g/mol

Together, these allow us to convert between:

mass ↔ moles ↔ particles

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4

The Mole as the Central Quantity

The mole acts as a bridge between mass and particles.

You usually cannot convert directly from mass to particles in one simple step.

Instead:

mass → moles → particles

Similarly:

particles → moles → mass

This means many chemistry problems are solved by first converting to moles.


Converting Moles to Particles

To convert moles to particles:

Number of particles = moles × Avogadro's number

In symbols:

N = n × Nₐ

where:

N = number of particles

n = number of moles

Nₐ = 6.022 × 10²³ mol⁻¹


Worked Example: Moles to Atoms

How many atoms are present in 2.5 mol of helium?

Use:

N = n × Nₐ

N = 2.5 × 6.022 × 10²³

N = 1.5055 × 10²⁴

Therefore:

2.5 mol He contains 1.51 × 10²⁴ helium atoms.


Worked Example: Moles to Molecules

How many molecules are present in 0.40 mol H₂O?

N = 0.40 × 6.022 × 10²³

N = 2.4088 × 10²³

Therefore:

0.40 mol H₂O contains 2.41 × 10²³ water molecules.


Converting Particles to Moles

To convert particles to moles:

Moles = number of particles ÷ Avogadro's number

In symbols:

n = N ÷ Nₐ


Worked Example: Molecules to Moles

A sample contains 1.2044 × 10²⁴ CO₂ molecules.

How many moles are present?

n = N ÷ Nₐ

n = (1.2044 × 10²⁴) ÷ (6.022 × 10²³)

n = 2.0

Therefore:

2.0 mol CO₂


A Quick Rule

To move:

moles → particles

multiply by 6.022 × 10²³

To move:

particles → moles

divide by 6.022 × 10²³

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5

Converting Mass to Moles

Mass and moles are connected by molar mass.

Use:

Moles = mass ÷ molar mass

In symbols:

n = m ÷ M

where:

n = moles

m = mass in grams

M = molar mass in g/mol


Worked Example: Mass to Moles

How many moles are present in 36.0 g of water?

Molar mass of H₂O ≈ 18.0 g/mol

n = 36.0 ÷ 18.0

n = 2.0 mol

Therefore:

36.0 g H₂O = 2.0 mol H₂O


Converting Moles to Mass

To calculate mass:

Mass = moles × molar mass

In symbols:

m = n × M


Worked Example: Moles to Mass

What is the mass of 3.0 mol CO₂?

Molar mass of CO₂:

12.01 + (2 × 16.00)

= 44.01 g/mol

Now calculate:

m = 3.0 × 44.01

m = 132.03 g

Therefore:

3.0 mol CO₂ has a mass of approximately 132 g.


The Main Conversion Map

These relationships can be summarized as:

Mass → Moles

divide by molar mass

Moles → Mass

multiply by molar mass

Moles → Particles

multiply by Avogadro's number

Particles → Moles

divide by Avogadro's number

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6

Converting Mass to Particles

This is a two-step calculation.

You cannot usually jump directly from mass to particles.

Instead:

mass → moles → particles

Step 1:

moles = mass ÷ molar mass

Step 2:

particles = moles × 6.022 × 10²³


Worked Example: Mass to Molecules

How many molecules are present in 9.0 g H₂O?

Step 1: Find molar mass.

H₂O:

M = (2 × 1.0) + 16.0

M = 18.0 g/mol

Step 2: Convert mass to moles.

n = 9.0 ÷ 18.0

n = 0.50 mol

Step 3: Convert moles to molecules.

N = 0.50 × 6.022 × 10²³

N = 3.011 × 10²³

Therefore:

9.0 g H₂O contains approximately 3.01 × 10²³ molecules.


Worked Example: Mass to Atoms

How many atoms are present in 24.0 g of carbon?

Molar mass of carbon ≈ 12.0 g/mol

Step 1: Calculate moles.

n = 24.0 ÷ 12.0

n = 2.0 mol

Step 2: Convert moles to atoms.

N = 2.0 × 6.022 × 10²³

N = 1.2044 × 10²⁴

Therefore:

24.0 g carbon contains approximately 1.20 × 10²⁴ atoms.


Converting Particles to Mass

This is also a two-step calculation.

Use:

particles → moles → mass

Step 1:

moles = particles ÷ Avogadro's number

Step 2:

mass = moles × molar mass


Worked Example: Molecules to Mass

A sample contains 3.011 × 10²³ molecules of O₂.

What is its mass?

Step 1: Convert molecules to moles.

n = (3.011 × 10²³) ÷ (6.022 × 10²³)

n = 0.50 mol

Step 2: Find molar mass.

O₂ contains 2 oxygen atoms.

M = 2 × 16.00

M = 32.00 g/mol

Step 3: Calculate mass.

m = 0.50 × 32.00

m = 16.0 g

Therefore:

3.011 × 10²³ O₂ molecules have a mass of 16.0 g.


Types of Particles

Always identify what kind of particle the question refers to.

Possible particle types include:

  • atoms
  • molecules
  • ions
  • formula units

For example:

1 mol Ne = 6.022 × 10²³ neon atoms

1 mol CO₂ = 6.022 × 10²³ carbon dioxide molecules

1 mol Na⁺ = 6.022 × 10²³ sodium ions

1 mol NaCl = 6.022 × 10²³ formula units


Counting Atoms Inside Molecules

Sometimes a question asks for the number of individual atoms inside a molecular sample.

You must use the chemical formula.

For example:

H₂O contains:

  • 2 H atoms
  • 1 O atom

Therefore each H₂O molecule contains:

3 atoms total

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4

Worked Example: Hydrogen Atoms in Water

How many hydrogen atoms are present in 2.0 mol H₂O?

Each H₂O molecule contains 2 H atoms.

Therefore:

2.0 mol H₂O contains:

4.0 mol H atoms

Now convert moles of atoms to number of atoms.

N = 4.0 × 6.022 × 10²³

N = 2.4088 × 10²⁴

Therefore:

2.0 mol H₂O contains 2.41 × 10²⁴ hydrogen atoms.


Worked Example: Total Atoms in Carbon Dioxide

How many total atoms are present in 0.50 mol CO₂?

Each CO₂ molecule contains:

1 C + 2 O = 3 atoms

Therefore:

0.50 mol CO₂ corresponds to:

0.50 × 3 = 1.5 mol atoms

Now:

N = 1.5 × 6.022 × 10²³

N = 9.033 × 10²³

Therefore:

0.50 mol CO₂ contains 9.03 × 10²³ total atoms.


Counting Ions in Ionic Compounds

Ionic compounds require the same careful attention to chemical formulae.

Consider:

CaCl₂

Each formula unit contains:

  • 1 Ca²⁺ ion
  • 2 Cl⁻ ions

Therefore:

1 mol CaCl₂ corresponds to:

  • 1 mol Ca²⁺
  • 2 mol Cl⁻
  • 3 mol ions total

Worked Example: Chloride Ions

How many chloride ions are present in 0.25 mol CaCl₂?

Each formula unit contains 2 chloride ions.

Therefore:

0.25 × 2 = 0.50 mol Cl⁻

Now convert to ions.

N = 0.50 × 6.022 × 10²³

N = 3.011 × 10²³

Therefore:

0.25 mol CaCl₂ contains 3.01 × 10²³ chloride ions.


Multi-Step Problem: Mass to Atoms

How many oxygen atoms are present in 44.0 g CO₂?

Step 1: Find molar mass.

M(CO₂) = 12.0 + (2 × 16.0)

M = 44.0 g/mol

Step 2: Convert mass to moles.

n = 44.0 ÷ 44.0

n = 1.0 mol CO₂

Step 3: Account for oxygen atoms.

Each CO₂ molecule contains 2 oxygen atoms.

Therefore:

1.0 mol CO₂ = 2.0 mol O atoms

Step 4: Convert to atoms.

N = 2.0 × 6.022 × 10²³

N = 1.2044 × 10²⁴

Therefore:

44.0 g CO₂ contains approximately 1.20 × 10²⁴ oxygen atoms.


Multi-Step Problem: Mass to Ions

How many sodium ions are represented by 11.7 g NaCl?

Step 1: Find molar mass.

Na = 22.99

Cl = 35.45

M(NaCl) = 58.44 g/mol

Step 2: Convert mass to moles.

n = 11.7 ÷ 58.44

n ≈ 0.200 mol

Step 3: Use the formula.

Each NaCl formula unit contains 1 Na⁺ ion.

Therefore:

0.200 mol NaCl = 0.200 mol Na⁺

Step 4: Convert to ions.

N = 0.200 × 6.022 × 10²³

N ≈ 1.20 × 10²³

Therefore:

11.7 g NaCl contains approximately 1.20 × 10²³ sodium ions.


Multi-Step Problem: Particles to Mass

A sample contains 1.8066 × 10²⁴ molecules of NH₃.

What is its mass?

Step 1: Convert molecules to moles.

n = (1.8066 × 10²⁴) ÷ (6.022 × 10²³)

n = 3.0 mol

Step 2: Find molar mass.

NH₃:

N = 14.01

H = 1.008

M = 14.01 + (3 × 1.008)

M ≈ 17.03 g/mol

Step 3: Calculate mass.

m = 3.0 × 17.03

m ≈ 51.1 g

Therefore:

1.8066 × 10²⁴ NH₃ molecules have a mass of approximately 51.1 g.


A Problem-Solving Road Map

A useful way to solve these problems is to identify your starting point and your destination.

If the question gives:

mass and asks for particles

use:

mass → moles → particles

If the question gives:

particles and asks for mass

use:

particles → moles → mass

If the question gives:

moles and asks for mass

use:

moles → mass

If the question gives:

moles and asks for particles

use:

moles → particles

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5

Dimensional Thinking

Units can help you decide which operation to perform.

For example:

20.0 g ÷ 40.0 g/mol

The grams cancel:

g ÷ (g/mol) = mol

So the result is in moles.

Similarly:

2.0 mol × 6.022 × 10²³ particles/mol

The mol units cancel:

mol × particles/mol = particles

Checking units is a powerful way to catch mistakes.


Scientific Notation

Particle calculations usually produce very large numbers.

For example:

6.022 × 10²³

1.204 × 10²⁴

3.011 × 10²²

Scientific notation makes these values easier to read and calculate.

Remember:

10²⁴ is ten times larger than 10²³

and:

10²² is ten times smaller than 10²³


Using a Scientific Calculator

For a calculation such as:

2.50 × 6.022 × 10²³

you may enter:

2.50 × 6.022 EXP 23

depending on your calculator.

For division:

3.011 × 10²³ ÷ 6.022 × 10²³

use brackets if necessary to ensure the entire scientific notation value is entered correctly.


Significant Figures

Final answers should normally reflect the precision of the information given.

For example:

2.0 mol × 6.022 × 10²³

The value 2.0 has two significant figures.

So a suitable answer is:

1.2 × 10²⁴ particles

rather than writing many unnecessary digits.


Common Misconceptions

Mass can be converted to particles by multiplying directly by Avogadro's number.

Incorrect. Mass should first be converted to moles using molar mass.

Moles to particles means divide by Avogadro's number.

Incorrect. Moles to particles means multiply.

Particles to moles means multiply by Avogadro's number.

Incorrect. Particles to moles means divide.

One mole means one particle.

Incorrect. One mole contains 6.022 × 10²³ particles.

Every substance has the same molar mass.

Incorrect. Every mole contains the same number of particles, but substances have different molar masses.

One mole of H₂O contains one mole of atoms.

Incorrect. One mole of H₂O contains one mole of molecules but three moles of atoms in total.

The subscript in a chemical formula can be ignored.

Incorrect. Subscripts determine how many atoms or ions are present and are essential in multi-step problems.


Did You Know?

A laboratory balance measures macroscopic quantities such as grams, but chemical reactions occur between microscopic particles.

The mole connects these two scales.

For example, a chemist can weigh a sample of water, convert its mass to moles, and then calculate how many individual water molecules are present.

This means the pathway:

mass → moles → particles

is one of the most important links between what chemists can measure and what is actually happening at the atomic level.


Key Terms

Mole – An amount of substance containing 6.022 × 10²³ specified entities.

Avogadro's number – 6.022 × 10²³ particles per mole.

Molar mass – The mass of one mole of a substance, usually measured in g/mol.

Particle – A general term for atoms, molecules, ions, or formula units.

Atom – The smallest particle of an element that retains its chemical identity.

Molecule – A group of atoms joined by covalent bonds.

Ion – An electrically charged particle.

Formula unit – The simplest whole-number ratio of ions in an ionic compound.

Scientific notation – A method of expressing very large or small numbers using powers of ten.


Key Takeaways

  • Moles connect measurable amounts of substances with microscopic particles.
  • 1 mol = 6.022 × 10²³ particles.
  • To convert moles to particles, multiply by Avogadro's number.
  • To convert particles to moles, divide by Avogadro's number.
  • To convert mass to moles, divide by molar mass.
  • To convert moles to mass, multiply by molar mass.
  • Mass-to-particle problems usually follow mass → moles → particles.
  • Particle-to-mass problems usually follow particles → moles → mass.
  • Chemical formulae must be considered when counting individual atoms or ions.
  • Subscripts tell you how many atoms or ions are present.
  • Scientific notation is important when expressing particle numbers.
  • Units can help determine whether to multiply or divide.
  • Multi-step chemistry calculations become much easier when moles are treated as the central conversion point.