Chapter 8: Journey Inside the Atom Quick Revision notes | Class 9th Science (Exploration) notes


GRADE 9 • CHEMISTRY • CHAPTER 8

Journey Inside the Atom ⚛️

— quick & colourful notes to master atomic structure —
Atoms diagram showing house, brick, cell, protein all made of atoms Everything — living or non-living — is built from tiny atoms!
1 Roots of Atomic Theory 📜
  • Acharya Kanada (ancient India) said matter (dravya) divided repeatedly leads to smallest indivisible particles called parmanus (recorded in the Vaisesika Sutras).
  • Leucippus & Democritus (ancient Greece) called these indivisible particles atomos (Greek for “indivisible”).
  • Both ideas were purely imaginary/philosophical — not based on experiments.
  • John Dalton (1808): proposed the first scientific atomic theory, based on real experiments — atoms are the fundamental, indivisible building blocks of matter.
KEY QUESTIONS AFTER DALTON

What are atoms made of? What do they look like? What makes atoms of different elements different?

• • •
2 Thomson’s Model of the Atom 🍉
J.J. Thomson portrait J.J. Thomson — discovered the electron (1897)
  • Studying cathode rays (in a cathode ray tube), Thomson discovered tiny negatively charged particles — electrons.
  • Electrons are found in every element → atoms are NOT indivisible after all!
  • Charge of an electron = –1.602 × 10⁻¹⁹ C, taken as –1 by convention.
Cathode ray tube diagram Cathode ray tube: rays flow from cathode (–) to anode (+)

Puzzle: atoms are neutral — so where’s the positive charge? Thomson proposed:

Thomson's plum pudding model of the atom “Plum pudding” model: electrons embedded in a positive sphere
Watermelon analogy for Thomson's model Like a watermelon: red pulp = positive matter, seeds = electrons
NOTE

Atoms have no real colour — diagram colours are just for illustration!

• • •
3 The Gold Foil Experiment 🎯

In 1911, Geiger & Marsden (under Rutherford) fired α-particles (positively charged, from radioactive elements) at a super-thin gold foil to test Thomson’s model.

Schematic of the gold foil scattering experiment Most particles pass straight through — but a few scatter sharply, and some bounce back!
  • Expected (per Thomson’s model): particles pass straight through or deflect only slightly.
  • Observed: most passed through undeflected, some deflected sharply, and a few bounced straight back!
  • This deflection from the straight path is called scattering — hence “α-ray scattering experiment.”
  • Thomson’s model failed to explain this result.
• • •
4 Rutherford’s Model & the Proton 🪐
Ernest Rutherford portrait Ernest Rutherford — Father of Nuclear Physics
Rutherford's planetary model of the atom Planetary model: electrons orbit a tiny, dense nucleus
  • Most of the atom is empty space — since most α-particles passed straight through.
  • The nucleus is tiny, dense, and holds all the positive charge + most of the mass.
  • Electrons revolve around the nucleus like planets around the Sun — the planetary model.
  • Nucleus is about 10⁵ times smaller than the atom (atom ≈ 10⁻¹⁰ m, nucleus ≈ 10⁻¹⁵ m).
🏟️ Fun Fact If an atom were the size of a cricket ground (100 m), the nucleus would be just a tiny pepper grain at the centre!

Limitation: Rutherford’s model couldn’t explain why atoms are stable. A revolving (accelerating) electron should lose energy and spiral into the nucleus — but atoms don’t collapse!

Spiral path of an electron losing energy Rutherford’s model predicted electrons would spiral in and collapse — but they don’t!
DISCOVERY: PROTON

Rutherford showed the nucleus carries positive charge from particles called protons (charge = +1). Number of protons = number of electrons → atom is neutral.

• • •
5 Bohr’s Model of the Atom 🔵
Niels Bohr portrait Niels Bohr — proposed fixed energy levels (1913)
Energy levels K L M N in an atom Shells K, L, M, N… — energy increases moving outward
  • Electrons move only in fixed circular paths called stationary states / orbits / shells — not randomly.
  • Shells named K, L, M, N… (or n = 1, 2, 3, 4…). K is closest to the nucleus and has the least energy.
  • While in a fixed shell, an electron does NOT lose energy — this is what explains atomic stability!
  • An electron can jump shells only by absorbing or releasing a fixed amount of energy.
🔤 Why K, L, M, N? Named after early X-ray line naming by Charles Barkla, who started at “K” to leave room for any earlier undiscovered series.
• • •
6 Discovery of the Neutron ⚪
James Chadwick portrait James Chadwick discovered the neutron (1932)

Puzzle: Helium has 2 protons but its mass is ~ that of hydrogen (1 proton), not 2×. Something else must add mass!

Advertisement
  • James Chadwick discovered the neutron — mass ≈ proton’s mass, but no charge (symbol: n).
  • Found in the nucleus of all atoms except hydrogen.
  • Neutrons help hold the nucleus together by weakening the repulsion between protons — via the nuclear force.
ParticleSymbolRelative Charge
Electrone⁻−1
Protonp⁺+1
Neutronn⁰0
Bhabha Atomic Research Centre BARC BARC, Mumbai — India’s centre for neutron-scattering research
• • •
7 Symbols of Elements 🔤
Dalton's pictorial symbols for elements Dalton’s original pictorial symbols (1803) — later replaced by letters
  • Dalton (1803): first introduced pictorial symbols for elements.
  • Berzelius (1813): proposed symbols from elements’ Latin names — the alphabetic system we use today.
  • Today, IUPAC approves official names & symbols worldwide.

Rules for writing symbols:

  • First letter is always capital; second letter (if any) is small — e.g. Al (not AL), Co (not CO).
  • Some symbols use a letter other than the 2nd letter — e.g. Chlorine = Cl, Zinc = Zn.
  • Some symbols come from Latin/Greek/German names — Iron = Fe (ferrum), Mercury = Hg (hydrargyros), Tungsten = W (wolfram).
• • •
8 Atomic Number & Mass Number 🔢
Lithium atom protons neutrons electrons diagram Lithium: 3 protons, 4 neutrons, 3 electrons
ATOMIC NUMBER (Z)

Z = Number of protons in the nucleus (= number of electrons, since atom is neutral)

Advertisement
MASS NUMBER (A)

A = Number of protons + Number of neutrons (i.e., total nucleons)

  • Electron mass is negligible — mass of an atom comes almost entirely from protons + neutrons.
  • Standard notation: mass number written top-left, atomic number bottom-left of the symbol.
¹²₆C (mass number 12, atomic number 6)
• • •
9 Electron Distribution in Shells ⚡

Bohr-Bury rules for filling electrons into shells:

  • Maximum electrons in a shell = 2n² (n = shell number): K=2, L=8, M=18…
  • Outermost shell can hold a maximum of 8 electrons (except the very first shell, which holds max 2).
  • Shells fill in order — K first, then L, then M… — the next shell only starts filling once the current one is full.
Electron shell diagrams for first 18 elements Electron shell diagrams for the first 18 elements (H to Ar)

This electron arrangement is called the electronic configuration of an atom (e.g. Sodium = 2, 8, 1).

• • •
10 Valency 🤝
  • Combining capacity = number of H or Cl atoms one atom of an element can combine with.
  • Outermost shell = valence shell; electrons in it = valence electrons.
  • A full outer shell of 8 electrons (called an octet; or 2 for helium) = stable, unreactive.
  • Valency = number of electrons gained, lost, or shared to complete the octet.
RULE OF THUMB

<4 valence electrons → tends to LOSE electrons. >4 valence electrons → tends to GAIN electrons. =4 → tends to SHARE electrons.

Advertisement
  • Sodium (2,8,1): loses 1 electron → valency 1.
  • Oxygen (2,6): gains 2 electrons → valency 2.
  • Carbon (2,4): shares 4 electrons → valency 4.
• • •
11 Isotopes & Average Atomic Mass 🧪
ISOTOPES

Atoms of the SAME element (same atomic number) with DIFFERENT mass numbers (different neutron count).

Isotopes of hydrogen protium deuterium tritium Hydrogen’s isotopes: protium, deuterium, tritium (1, 2, 3 nucleons)
Isotopes of carbon C-12 C-13 C-14 Carbon’s isotopes: C-12, C-13, C-14 (same protons, different neutrons)
  • Isotopes have the same chemical properties (same electrons/valence), but different physical properties (boiling/melting points).
  • Uses: U-235 → nuclear fuel; Co-60 → cancer radiation treatment; I-131 → thyroid treatment; C-14 → dating fossils.
A nuclear power plant Uranium-235 fuels nuclear power plants
Average atomic mass = Σ (isotope mass × % abundance)

e.g. Chlorine: 75% ³⁵Cl + 25% ³⁷Cl → weighted average = 35.5 u (not the simple average of 36 u!).

• • •
12 Isobars ⚖️
Homi Jehangir Bhabha portrait Homi Bhabha — father of India’s nuclear programme
ISOBARS

Atoms of DIFFERENT elements with the SAME mass number but DIFFERENT atomic numbers.

  • Example: Calcium (Z=20), Potassium (Z=19), Argon (Z=18) — all have mass number 40, but are different elements.
Scanning tunnelling microscope image of atoms STM image — individual atoms made visible!

The atomic story isn’t over — Bohr’s model too had limits. Electrons don’t follow neat fixed paths; today we picture them as “electron clouds” — regions of probability around the nucleus (the quantum mechanical model, studied in higher grades).

• • •
Journey of Atomic Models — Timeline 🕰️
DaltonIndivisible particle
ThomsonPlum pudding
RutherfordNuclear model
BohrEnergy levels
ModernQuantum model
Still being discovered!
• • •

🌟 Quick Revision — At a Glance

  • Atoms are the building blocks of all matter.
  • Thomson: electrons embedded in a positively charged sphere (plum pudding).
  • Rutherford: atom is mostly empty space, with a small dense positive nucleus, electrons orbiting it.
  • Bohr: electrons move in fixed energy levels (shells K, L, M, N…) without losing energy.
  • Chadwick discovered the neutron; three subatomic particles = electron, proton, neutron.
  • Octet (8 electrons, or 2 for He) in outer shell = stable atom.
  • Valency = electrons gained/lost/shared to complete the octet.
  • Atomic number (Z) = number of protons. Mass number (A) = protons + neutrons.
  • Isotopes = same Z, different A. Isobars = different Z, same A.

Leave a Reply

Your email address will not be published. Required fields are marked *

error: Content is protected !!