By the end of this chapter you'll be able to…

  • 1Classify any sample of matter as element, compound, or mixture (homogeneous/heterogeneous)
  • 2Distinguish solutions, colloids and suspensions by particle size, Tyndall effect and filter-paper behaviour
  • 3Compute mass percentage and volume percentage of a solute in a given solution
  • 4Identify the correct separation technique for any given mixture
  • 5Explain the Tyndall effect with at least three everyday examples
  • 6Distinguish miscible vs immiscible liquids and choose the right separation method
  • 7Name the eight common physical separation techniques and the kind of mixture each is used for
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Why this chapter matters
This chapter is the conceptual gateway to all of chemistry. Once you can distinguish a compound from a mixture and a colloid from a solution, you can read any pharmaceutical label, food ingredients list or material data sheet with chemical understanding.

Is Matter Around Us Pure? — Class 9 (CBSE)

A scientist's "pure" is much stricter than a grocer's "pure." Pure milk on a packet means "no added water." Pure to a chemist means "made of only one kind of particle." This chapter teaches you to think like a chemist about every glass of water, every breath of air, and every spoonful of food.


1. The story — purity matters

In 1947 the Indian railway network was already vast, but mineral water was unknown. Travellers carried earthen pots ("surai") of water. By the 1980s, packaged "pure" water became a Rs. 50,000-crore industry in India. The word "pure" sells. But what does it really mean?

To a chemist, pure matter consists of only ONE kind of particle. Distilled water is pure (only H₂O molecules). The water in your bottle is NOT pure — it contains dissolved minerals, oxygen, sometimes chlorine. It's a mixture.

This chapter does three things:

  • Classifies all matter into pure substances vs mixtures (and further).
  • Teaches you to recognise solutions, suspensions and colloids by particle size and the Tyndall effect.
  • Gives you the standard methods to physically SEPARATE the components of a mixture.

2. The classification tree — memorise this picture

                    Matter
                      |
        +-------------+-------------+
        |                           |
   Pure substance              Mixture
        |                           |
   +----+----+              +-------+-------+
   |         |              |               |
 Element  Compound      Homogeneous   Heterogeneous
   |         |              |               |
   H, O    H₂O,         salt soln,    sand+water,
   Au, Cu   CO₂,         air,         oil+water,
            NaCl         alloys       chalk+water

Two-sentence summary:

  • Pure substances (elements & compounds) have a fixed composition and fixed properties.
  • Mixtures (homogeneous & heterogeneous) have variable composition and the properties of their constituents.

3. Pure substances — element vs compound

Element

  • Made of ONLY ONE type of atom. Cannot be broken down by ordinary chemical means.
  • Currently 118 known elements (94 natural, 24 synthetic).
  • Categories: Metals (iron, copper, gold), Non-metals (oxygen, carbon, sulphur), Metalloids (silicon, germanium — properties between metal and non-metal).

Compound

  • Two or more elements in a fixed ratio, chemically combined.
  • Properties are completely different from those of the constituent elements.
  • Example: water (H₂O) is liquid; hydrogen and oxygen alone are gases. Salt (NaCl) is edible; sodium is a violently reactive metal and chlorine is a poison gas. Chemical combination changes everything.
  • Constituents can be separated only by chemical methods (electrolysis, decomposition), not physical ones.

Element vs Compound — the 4-test memorisation table

QuestionElementCompound
How many types of atoms?OneTwo or more
Can be broken down chemically?NoYes
Fixed ratio?N/AYes
Properties vs constituents?Same as itselfDifferent from elements

4. Mixtures — homogeneous vs heterogeneous

Homogeneous mixture (= solution)

  • Uniform composition throughout. Cannot see boundaries between components.
  • One phase visible everywhere.
  • Examples: salt water, sugar water, air, brass (Cu + Zn), bronze, stainless steel.

Heterogeneous mixture

  • Non-uniform; you can see (sometimes only with a microscope) different regions.
  • Two or more visible phases.
  • Examples: sand + water, oil + water, chalk + water, granite, soil.

The line between homogeneous and heterogeneous isn't always crisp — it depends on the scale you look at. Colloids look homogeneous to the eye but are heterogeneous under a microscope (they're an in-between case, more in §6).


5. Solutions — homogeneous mixtures explored

A solution is a homogeneous mixture of two or more substances. The component present in larger amount is the solvent; the smaller one is the solute.

TypeSolventSoluteExample
Solid in liquidLiquidSolidSalt in water
Liquid in liquidLiquidLiquidVinegar (acetic acid in water)
Gas in liquidLiquidGasSoda water (CO₂ in water)
Solid in solid (alloy)SolidSolidBrass (Zn in Cu)
Gas in gasGasGasAir (O₂ in N₂)

Properties of a true solution

  1. Homogeneous — uniform.
  2. Particle size very small ().
  3. Particles do NOT settle when left undisturbed.
  4. Particles pass through filter paper — too small to be filtered.
  5. Light passes straight through — no scattering (no Tyndall effect).
  6. Stable — components don't separate over time.

Saturated and unsaturated solutions

  • Unsaturated: more solute can still dissolve at that temperature.
  • Saturated: cannot dissolve any more solute at that temperature.
  • Supersaturated: more solute dissolved than usual (achieved by heating then cooling carefully); unstable.

Concentration formulas — memorise both

Mass percentage (most common in CBSE):

Volume percentage (for liquid solutes):

Note: mass of solution = mass of solute + mass of solvent. Don't confuse with "mass of solvent" — common 1-mark trap.


6. Suspensions and colloids — the in-between cases

Suspension

  • A heterogeneous mixture where solute particles are big enough to be visible (or large enough to settle out).
  • Particle size .
  • Particles settle down when left.
  • Particles are retained by filter paper.
  • Example: chalk + water, muddy water, paints (before stirring).

Colloid

  • A heterogeneous mixture that LOOKS homogeneous to the naked eye.
  • Particle size between and .
  • Particles do NOT settle.
  • Particles pass through filter paper but are stopped by special ultrafilters.
  • Show the Tyndall effect: scatter light, making a visible beam.

Tyndall effect — the colloid signature

When a beam of light passes through:

  • A solution → light passes through invisibly.
  • A colloid → light is scattered by colloidal particles → the beam is visible.

Examples you've seen:

  • Sunbeam through a dusty room.
  • Sunlight through forest mist or fog.
  • Headlights cutting through mist on a foggy night.

Types of colloids (memorise this table — 2-mark question)

Dispersing mediumDispersed phaseTypeExample
GasLiquidAerosolFog, mist, clouds, deodorant spray
GasSolidAerosolSmoke, dust storm
LiquidGasFoamSoap foam, shaving cream, fire-extinguisher foam
LiquidLiquidEmulsionMilk, butter (in cream), face cream
LiquidSolidSolPaint, blood, ink, jellies (gels are similar)
SolidGasSolid foamSponge, bread, pumice stone
SolidLiquidGelJelly, butter, cheese
SolidSolidSolid solColoured gemstones, alloys

The three particle-size regimes — memorise

TypeParticle sizeTyndall?Settles?Filter paper?
Solution< 1 nmNoNoPasses
Colloid1 nm – 1 μmYESNoPasses (use ultrafilter)
Suspension> 1 μmYESYesRetained

7. Separation techniques — which method for which mixture?

CBSE tests this with great consistency. Match each method to the mixture type.

Filtration

For: insoluble solid + liquid (suspension). Examples: sand from water, tea leaves from tea.

Evaporation

For: soluble solid from liquid (solution). Examples: salt from sea water.

Centrifugation

For: small particles that won't filter (colloids, blood). Spin fast → heavier particles move outward → light supernatant on top. Example: separating cream from milk, separating plasma from blood cells.

Sublimation

For: separating a subliming solid from a non-subliming solid. Example: ammonium chloride mixed with sand.

Distillation

For: separating two miscible liquids with large boiling-point difference (> 25 °C). The component with the lower boiling point evaporates first, condenses in the condenser, collected as distillate. Example: water and acetone, water and alcohol.

Fractional distillation

For: two miscible liquids with small boiling-point difference (< 25 °C). Uses a fractionating column packed with glass beads. Example: petrol and diesel from crude oil, separating gases of liquefied air (O₂, N₂, Ar all have similar BPs).

Chromatography

For: separating dyes, pigments — typically dissolved solid solutes. Different components travel different distances on the chromatography paper. Example: separating the dyes in black ink, plant pigments.

Separating funnel

For: two immiscible liquids (won't mix — form layers). Example: oil and water, kerosene and water.

Crystallisation

For: getting pure solid crystals from a solution (better than evaporation for impurities-laden solutions). Example: pure copper sulphate crystals from impure sample.


8. Closing thought

Almost nothing in your life is pure — and that's a good thing. Pure water has no minerals; you'd get deficiencies. Pure oxygen is dangerous; humans live in 21% oxygen with 78% nitrogen. Bronze, an alloy of copper and tin, is stronger than either pure metal. Steel, an iron-carbon mixture, built the modern world.

Mixtures are everywhere because they're useful. What chemistry gives you is the language to describe them precisely (solution vs colloid vs suspension), the tools to measure them (Tyndall effect, mass %), and the methods to separate them (eight techniques you just learned). Walk into any chemical industry, soap factory, oil refinery or pharma plant and you'll see these eight separation techniques scaled up to industrial size.

Key formulas & results

Everything you need to memorise, in one card. Screenshot this for revision.

Mass percentage
% by mass = (mass of solute / mass of solution) × 100
Solution = solute + solvent. Common 1- and 2-mark numerical.
Volume percentage
% by volume = (volume of solute / volume of solution) × 100
Used for liquid-in-liquid solutions like alcohol-water.
Mass of solution
Mass of solution = mass of solute + mass of solvent
The most-missed step in CBSE numericals.
Concentration ranges (size)
Solution < 1 nm · Colloid 1 nm–1 μm · Suspension > 1 μm
Memorise — directly tested.
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Common mistakes & fixes

These are the exact errors that cost students marks in board exams. Read them once, save yourself the trouble.

WATCH OUT
Treating air as a pure substance
Air is a HOMOGENEOUS mixture of N₂, O₂, Ar, CO₂ and water vapour. The 'one phase' look fools many — but composition isn't fixed.
WATCH OUT
Calling milk a solution
Milk is a COLLOID (emulsion of fat in water). It scatters light (Tyndall effect) and shows particles under a microscope.
WATCH OUT
Using mass of solvent instead of mass of solution in mass %
Always: mass of SOLUTION (solute + solvent) goes in the denominator.
WATCH OUT
Saying 'a compound's properties are similar to its elements'
A compound's properties are usually COMPLETELY different. Sodium + chlorine (reactive metal + poison gas) → NaCl (table salt).
WATCH OUT
Choosing distillation for water + sand
Use filtration. Distillation only for two liquids; sand is a SOLID.
WATCH OUT
Choosing distillation for petrol + diesel
Use FRACTIONAL distillation — their boiling points are too close (< 25 °C apart) for simple distillation.
WATCH OUT
Saying colloids settle down
Colloids do NOT settle (suspensions do). That's how Tyndall + non-settling separates colloids from suspensions.

NCERT exercises

Every NCERT exercise from this chapter — what it covers and how many questions to expect.

Section 2.1 (in-text)
Section 2.1 (in-text)
Pure substances vs mixtures, classification activities
3
Questions
Section 2.2 (in-text)
Section 2.2 (in-text)
Solutions: solvent/solute, concentration, mass% problems
5
Questions
Section 2.3 (in-text)
Section 2.3 (in-text)
Colloids and suspensions, Tyndall effect
4
Questions
Section 2.4 (in-text)
Section 2.4 (in-text)
Separation techniques: filtration, evaporation, distillation, etc.
6
Questions
Section 2.5 (in-text)
Section 2.5 (in-text)
Element vs compound, chemical change
3
Questions
End-of-chapter
End-of-chapter
Mixed: classification, numericals on mass%, methods of separation
14
Questions

Practice problems

Work through this chapter's problems as a readiness check — reveal each solution, mark yourself honestly, and get your gap report at the end.

Readiness check

Are you exam-ready for Is Matter Around Us Pure??

15 problems from this chapter. Try each one, reveal the worked solution, mark yourself honestly — get your gap report at the end.

15 questions~11 min worth ~7 marks in Karnataka (KSEEB) exams

5-minute revision

The whole chapter, distilled. Read this the night before the exam.

  • Pure substance = single kind of particle. Two types: element (one atom kind), compound (two+ in fixed ratio chemically bonded).
  • Mixture = variable composition. Two types: homogeneous (solutions, alloys) and heterogeneous (sand+water, oil+water, colloids, suspensions).
  • Solution: particles < 1 nm, no Tyndall, passes filter, doesn't settle.
  • Colloid: 1 nm–1 μm, shows Tyndall, passes filter, doesn't settle.
  • Suspension: > 1 μm, shows Tyndall, retained by filter, SETTLES on standing.
  • Mass % = (solute / solution) × 100. Solution = solute + solvent.
  • Tyndall effect = colloidal particles scattering light, making beam visible.
  • Separation methods: filtration (insoluble solid), evaporation (soluble solid), distillation (>25 °C BP diff), fractional (<25 °C), chromatography (dyes), separating funnel (immiscible liquids), centrifugation (colloid), sublimation (NH₄Cl from salt).
  • Fe + S stirred = mixture (magnetic, gives H₂); heated = FeS compound (non-magnetic, gives H₂S).

Karnataka (KSEEB) marks blueprint

Where the marks come from in this chapter — so you can plan your prep.

Typical chapter weightage: 5–7 marks

Question typeMarks eachTypical countWhat it tests
MCQ / Assert-Reason12–3Factual recall, concept identification
Short answer (2-mark)22Define, state, or give one example
Short answer (3-mark)31Explain process or compare two concepts
Long answer (5-mark)51Describe in detail with diagram
Prep strategy
  • Draw and label diagrams for all biological/physical processes — diagram questions are reliable marks
  • Know both the DEFINITION and the EXAMPLE for every key term
  • For 5-mark answers: intro → body (3–4 points) → conclusion. Use subheadings
  • Practise CBSE sample papers: question patterns repeat year after year

Where this shows up in the real world

This chapter isn't just an exam topic — it lives in the world around you.

Pharmaceutical purification

Drugs are crystallised (not just evaporated) from solution to remove impurities. Crystallisation gives much higher purity than evaporation.

Petroleum refining

A single oil refinery's fractional distillation column separates crude into 10+ fractions (petrol, kerosene, diesel, lubricants, bitumen) — the whole modern fuel economy.

Forensic chromatography

Police labs use chromatography to identify the pigments in ink, the dyes in fibres, and the components of drugs and explosives.

Blood centrifuge

Hospitals centrifuge blood to separate plasma (top) from blood cells (bottom). Plasma is used in transfusions, treatments.

Distilled water for batteries

Car batteries and lab work demand water with no dissolved ions. Distillation gives water free of all solutes.

Salt from sea water

Coastal India's salt pans use solar evaporation — heat the sea water in shallow ponds, water evaporates, salt crystallises out. Centuries-old industrial process.

Exam strategy

Battle-tested tips from teachers and toppers for this chapter.

1
In classification questions, always state the SPECIFIC type (e.g., 'homogeneous mixture' rather than just 'mixture').
2
For mass % numericals, ALWAYS write the line 'mass of solution = solute + solvent' before computing. Easy mark.
3
For 'name the method' questions, state the method AND a one-line reason (CBSE expects justification at 2+ marks).
4
Sublimation vs evaporation: sublimation is solid → gas (no liquid); evaporation is liquid → gas. Confusing these costs marks routinely.
5
Boiling-point cut-off: > 25 °C → distillation; < 25 °C → fractional distillation. Memorise.
6
Common Tyndall examples (memorise three): forest mist beams, fog headlights, dust in a sunbeam through a window.

Going beyond the textbook

For olympiad aspirants and curious learners — topics that build on this chapter.

STRETCH
Solubility curves: how solubility of solid solutes varies with temperature — different solids show very different patterns (KNO₃ steeply rising vs NaCl nearly flat).
STRETCH
Henry's law: the solubility of a gas in a liquid is proportional to its partial pressure above the liquid — explains why soda fizzes when opened.
STRETCH
Raoult's law and azeotropes: some liquid mixtures (e.g., 95.6 % ethanol-water) boil as a single constant-composition mixture and CANNOT be separated by simple/fractional distillation.
STRETCH
Steam distillation: used to separate temperature-sensitive volatile organic compounds (essential oils) — pass steam through the mixture instead of heating it directly.

Where else this chapter is tested

CBSE board isn't the only one — other exams test this chapter too.

NTSE / NMMSMedium — classification + separation MCQs are common
Olympiad (NSEJS)High — solubility curves and Raoult's law appear at the foundation level
JEE FoundationMedium — foundation for solutions chapter in Class 11 (mole fraction, molality)
NEET FoundationMedium — blood as a colloid, osmosis, separation methods in biology

Questions students ask

The real ones — pulled from the Q&A community and tutor sessions.

A mixture. Its components (N₂ ≈ 78 %, O₂ ≈ 21 %, Ar ≈ 0.9 %, CO₂ ≈ 0.04 %, plus water vapour) are not in fixed ratios and can be separated by physical means (cooling to liquid air, then fractional distillation).

Under a microscope you can see tiny fat globules dispersed in water — particles roughly 1 μm in size. Light passes through milk shows the Tyndall effect. Both criteria mark it as a colloid (specifically an emulsion).

Yes. Coloured gemstones (e.g., ruby = chromium dispersed in aluminium oxide) and some alloys are solid sols. The dispersed phase is finely distributed solid particles within a solid medium.

Sucrose (table sugar) is a compound (C₁₂H₂₂O₁₁) — fixed composition, can be decomposed chemically. Sugar dissolved in water is then a mixture (solution).

Brass is a solid solution. The zinc atoms slip into the copper lattice, disrupting the lattice slightly and producing new mechanical properties (harder, more corrosion-resistant). Even though it's a mixture, the atomic-level mixing changes how stress propagates through the metal.

No — by definition a solution has a solvent (the bulk) and a solute (dissolved in it). A material that's purely one substance is a pure substance, not a solution.
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Last reviewed on 18 May 2026. Written and reviewed by subject-matter experts — read about our process.
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