Chapter 9: Atomic Foundations of Matters Quick Revision notes | Class 9th Science (Exploration) notes

CLASS 9 · CHEMISTRY · CHAPTER 9

Atomic Foundations
of Matter

🧪 handwritten-style notes for quick revision 🧪

Atomic Foundations of Matter
LAW 1

⚖️ Law of Conservation of Mass

Mass can neither be created nor destroyed in a chemical reaction.

Given by Antoine Lavoisier (1789) — the “Father of Modern Chemistry”.

He stated: “…in every operation an equal quantity of matter exists both before and after the operation.”

Baking soda + vinegar experiment
vinegar + baking soda 🎈

🧫 Quick Activity Recap

  • Salt + Water (physical change): mass of solution = mass of salt + mass of water. No change in mass.
  • Vinegar + Baking soda in open flask: gas (CO₂) escapes → final reading ≠ initial reading (looks like mass lost).
  • Same reaction in a closed/tied balloon setup: gas is trapped → final reading = initial reading ✅

➡️ So mass is always conserved — the mismatch in the open flask was only because gas escaped, not because mass was destroyed.

Remember: Sodium sulfate + Barium chloride → Barium sulfate (white ppt) + Sodium chloride — total mass before = total mass after.
LAW 2

🧭 Law of Constant Proportions

Also called Law of Definite Proportions or Proust’s Law — given by Joseph Louis Proust.

In any compound, elements are always present in a fixed ratio by mass — no matter the source.

Example: Water from a river, borewell or ocean — when purified — always has Hydrogen : Oxygen = 1 : 8 by mass.

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So 9 g of pure water always gives 1 g hydrogen + 8 g oxygen.

Cinnabar
Cinnabar (HgS) 🔴
Fun fact: Cinnabar always breaks down into mercury (86.22%) and sulfur (13.78%) by mass — anywhere in the world, ancient civilisations found the same fixed ratio!
THEORY

⚛️ Dalton’s Atomic Theory

Both laws above are explained by John Dalton’s postulates (1808):

  • All matter is made of tiny particles called atoms.
  • Atoms are indivisible — cannot be created or destroyed in a reaction.
  • Atoms of the same element are identical in mass & properties.
  • Atoms of different elements differ in mass & properties.
  • Atoms combine in simple whole-number ratios to form compounds.
  • The relative number & kind of atoms is constant in a given compound.
John Dalton
John Dalton

English scientist, taught in Manchester. Presented his atomic theory in 1808 — a turning point in the study of matter.

💡 Atoms rearrange during a reaction — they are never created or destroyed. This is why mass is conserved and elements combine in fixed ratios.
CONCEPT

🔗 How Atoms Combine?

Atoms need 8 electrons in the valence shell (2 for K-shell) to be stable — i.e. a full octet.

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To complete the octet, atoms combine by:

  • Sharing of electrons → forms a Covalent Bond
  • Transfer of electrons → forms an Ionic Bond
A molecule = electrically neutral group of ≥2 atoms that exists independently & shows the properties of the substance.

Noble gases like Helium already have a stable outer shell → they exist as single atoms.

BOND TYPE A

🤝 Covalent Bond (Sharing)

Formed when atoms share electron pairs. The shared pair attracts both nuclei and holds the molecule together.

MoleculeElectrons sharedBond typeFormula
H₂1 eachSingleH—H
Cl₂1 eachSingleCl—Cl
O₂2 eachDoubleO=O
HCl1 eachSingleH—Cl
H₂O1 e⁻ from each H to O2 single bondsH—O—H

✏️ Naming Covalent (Molecular) Compounds

  • First element keeps its name; second element ends in -ide.
  • Prefixes show atom count: mono-1, di-2, tri-3, tetra-4, penta-5, hexa-6.
  • Mono- is skipped for the first element, used for the second.
  • Drop the vowel before another vowel: monoxide, pentoxide (not monooxide).
CO → carbon monoxide  |  CO₂ → carbon dioxide  |  N₂O₄ → dinitrogen tetroxide
H₂S → hydrogen sulfide (no prefix before H)  |  H₂O = water, NH₃ = ammonia (common names)
BOND TYPE B

⚡ Ionic Bond (Transfer)

Metals (usually <4 valence e⁻) lose electrons → form cations (+). Non-metals (usually >4 valence e⁻) gain electrons → form anions (–).

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Ionic bond = electrostatic force of attraction between oppositely charged ions.
NaCl crystal lattice
NaCl crystal lattice 🧂

Example — NaCl: Na loses 1 e⁻ → Na⁺; Cl gains 1 e⁻ → Cl⁻. Na⁺ + Cl⁻ → NaCl.

Ionic compounds form 3-D crystal lattices (not single molecules) — each Na⁺ is surrounded by 6 Cl⁻ and vice-versa.

🧾 Naming ionic compounds

Cation name first, then anion name (ending in -ide). Metal + non-metal → ionic compound.

Common CationsCommon Anions
Na⁺, K⁺, Ag⁺, Li⁺ (valency 1)Cl⁻, F⁻, Br⁻, I⁻, OH⁻, NO₃⁻ (valency 1)
Ca²⁺, Mg²⁺, Ba²⁺, Zn²⁺, Cu²⁺, Fe²⁺ (valency 2)O²⁻, S²⁻, CO₃²⁻, SO₄²⁻ (valency 2)
Al³⁺, Fe³⁺ (valency 3)PO₄³⁻ (valency 3)

Polyatomic ions (e.g. NH₄⁺, OH⁻, NO₃⁻, CO₃²⁻, SO₄²⁻) are groups of atoms carrying a charge together — names usually don’t end in -ide.

SKILL

✍️ Writing Chemical Formulae

Covalent compounds — criss-cross valencies

H (valency 1) + Cl (valency 1) → criss-cross → HCl
C (valency 4) + Cl (valency 1) → criss-cross → CCl₄

Ionic compounds — criss-cross charges

  1. Write cation symbol first, then anion symbol.
  2. Write charges below the symbols (not as superscripts).
  3. Criss-cross the numbers → these become subscripts.
  4. Simplify subscripts to the smallest whole-number ratio.
  5. Use brackets ( ) when 2+ polyatomic ions of the same kind are needed, e.g. Mg(OH)₂.
Ca²⁺ + Cl⁻ → CaCl₂  |  Al³⁺ + O²⁻ → Al₂O₃  |  Mg²⁺ + O²⁻ → MgO (simplified from Mg₂O₂)
Ca²⁺ + CO₃²⁻ → CaCO₃  |  Al³⁺ + OH⁻ → Al(OH)₃  |  Al³⁺ + SO₄²⁻ → Al₂(SO₄)₃
Note: Charges on ions are NOT shown in the final formula of the compound.
COMPARE

🔬 Properties: Ionic vs Covalent

Sodium chloride
Sodium chloride
Copper sulfate
Copper sulfate
Camphor
Camphor
Naphthalene
Naphthalene
PropertyIonic CompoundsCovalent Compounds
ExampleNaCl, CuSO₄Camphor, Naphthalene, Sugar
SolubilitySoluble in waterInsoluble in water, soluble in kerosene/petrol
Conducts electricity (solid)❌ No (ions fixed in lattice)❌ No
Conducts electricity (in water)✅ Yes (ions free to move)❌ Usually no (e.g. sugar solution)
Melting/Boiling pointHighLow
💡 Ions must be free to move to conduct electricity — that’s why ionic solids don’t conduct, but their solutions/molten forms do.
CALCULATE

⚖️ Molecular Mass & Formula Unit Mass

Molecular Mass (for covalent compounds)

Sum of atomic masses of all atoms in one molecule.

H₂O = (1×2) + (16×1) = 18 u
CO₂ = (12×1) + (16×2) = 44 u

Formula Unit Mass (for ionic compounds)

Ionic compounds don’t form molecules (they form crystal lattices), so we use “formula unit” = simplest whole-number ratio of ions.

Na₂O = (23×2) + (16×1) = 62 u
Ca(NO₃)₂ = (40×1) + {(14×1)+(16×3)}×2 = 164 u

🌟 At a Glance — Full Chapter Revision

  • Mass is neither created nor destroyed in a chemical reaction → Law of Conservation of Mass.
  • A compound always has the same elements in a fixed ratio by mass → Law of Definite/Constant Proportions.
  • A molecule = neutral, independent, 2+ atom particle showing all properties of the substance.
  • Atoms combine to become stable, held by a chemical bond.
  • Covalent bond = sharing of electrons.
  • Ionic bond = transfer of electrons → forms cations & anions.
  • Covalent formula = number of atoms of each element.
  • Ionic formula = simplest whole-number ratio of ions.
  • Molecular mass = sum of atomic masses in a molecule.
  • Formula unit mass = sum of atomic masses in one formula unit of an ionic compound.
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