AS & A-Level Chemistry 02 — Moles, formulas and chemical calculations
PublicIndependent Deckloop AS Chemistry study material aligned with Cambridge International 9701 (2025–2027). Deck 2 of 18: Moles, formulas and chemical calculations. Original explanations, worked applications and practice. Not affiliated with or endorsed by Cambridge International Education.
Chemistry
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A-Level
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The Mole and the Avogadro Constant
The mole is the for the amount of substance. One mole contains exactly elementary entities (which may be atoms, molecules, ions, or electrons); this specific number of particles per mole is known as the Avogadro constant . The mass of one mole of a substance in grams is numerically equal to its relative atomic, molecular, or formula mass. Therefore, exactly 12 grams of carbon-12 contains one mole of carbon atoms. The core mathematical relationship linking amount of substance in , mass in grams , and is . When working with chemical amounts, you must clearly distinguish between moles of molecules and moles of the individual atoms contained within those molecules.
Key points
- One mole contains exactly elementary particles.
- The Avogadro constant represents the number of particles .
- is the mass per mole of a substance, with units of .
- Amount of substance .
Worked example
Question
Calculate the total number of oxygen atoms in of carbon dioxide, . (: , ; )
Solution
1. .
2.
3. molecules =
4. Each molecule contains 2 oxygen atoms. atoms =
atoms
2.
3. molecules =
4. Each molecule contains 2 oxygen atoms. atoms =
atoms
Common pitfalls
- Calculating the moles of molecules but forgetting to multiply by the number of atoms per molecule when asked for total atoms.
- Confusing the single atom with the molar mass. Molar mass is the atoms.
Prerequisites
- Study Atomic structure and electron arrangement first.