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📖 Summaries Chemistry

Metallurgy

Chapter in a nutshell: how elements split into metals / non-metals, how a metal's place in the activity series decides its reactions and how it is extracted, plus corrosion, the extraction of aluminium and common alloys.

1. Metals vs Non-metals — Definitions

  • Metal: an element that forms positive ions (cations) by losing electrons → electropositive. e.g. Na − e⁻ → Na⁺, Mg − 2e⁻ → Mg²⁺, Al − 3e⁻ → Al³⁺.
  • Non-metal: an element that forms negative ions (anions) by gaining electrons → electronegative. e.g. Cl + e⁻ → Cl⁻, O + 2e⁻ → O²⁻, N + 3e⁻ → N³⁻.
  • Number of electrons lost/gained = valency. (Of 118 elements, only ~22 are non-metals. H is a non-metal that forms H⁺.)

2. Comparison of Metals and Non-metals

PropertyMetalsNon-metals
Valence electrons1–3 (lose → cation)5–7 (gain → anion)
Physical statesolids (except Hg, Ga)solids, gases, one liquid (Br₂)
Lustrelustrous (dull: Pb)dull (lustrous: iodine, graphite)
Hardnesshard, strong (soft: Na, K)soft/brittle (hardest: diamond)
M.P / B.P / densityhigh (low: Na, K, Hg, Ga)low (high: C, B, Si)
Malleable / ductileyes (except Zn, Hg)no (except carbon fibre)
Conductivitygood (best: Ag, Cu)poor (except graphite)
Nature of oxidebasic / amphotericacidic / neutral
In electrolysisdischarged at cathodedischarged at anode
Redox behaviourreducing agentsoxidising agents (except C, H)

3. Position in the Periodic Table

  • Alkali metals (Group IA): Li, Na, K, Rb, Cs, Fr — 1 valence e⁻, valency 1.
  • Alkaline-earth metals (Group IIA): Be, Mg, Ca, Sr, Ba, Ra — 2 valence e⁻, valency 2.
  • Metals fill the left + middle; non-metals the right; a zig-zag line of metalloids (B, Si, Ge, As, Sb, Te) separates them. Only one non-metal — H — sits on the left.

4. Alkali Metals (IA) — key features

  1. Very reactive → never found free; stored under kerosene.
  2. Soft (cut with a knife), low M.P/B.P; ionic salts (except some Li salts).
  3. Reactivity increases down the group; strong reducing agents (low ionisation energy).
  4. Flame colours: Li crimson red, Na golden yellow, K lilac/pale violet.
  • Action of water: 2M + 2H₂O → 2MOH + H₂↑
  • Action of acid: 2M + 2HCl → 2MCl + H₂↑

5. Alkaline-Earth Metals (IIA) — key features

  • Less reactive than alkali metals, harder, higher M.P; form +2 ions; basic oxides/hydroxides.
  • Action of water: M + 2H₂O → M(OH)₂ + H₂↑
  • Action of acid: M + H₂SO₄ → MSO₄ + H₂↑
  • Flame colours: Ca brick red, Sr crimson, Ba apple green (Be, Mg give none).

6. Nature of Oxides

TypeExamples
BasicNa₂O, CaO, MgO, Fe₂O₃, CuO
Amphoteric (react with both acid & base)Al₂O₃, ZnO, PbO
AcidicCO₂, SO₃, NO₂, P₂O₅
NeutralCO, NO, N₂O, H₂O

7. The Activity (Reactivity) Series

K Na Ca Mg Al Zn Fe Pb (H) Cu Hg Ag Au (most reactive / most electropositive / strongest reducing → least)
  • Electropositive character & reducing power decrease down the series.
  • Action of water: K, Na react with cold water; Ca with cold water (no ignition); Mg with hot water/steam; Al, Zn, Fe only with steam (e.g. 3Fe + 4H₂O ⇌ Fe₃O₄ + 4H₂); Cu and below — no reaction.
  • Action of dilute acid: metals above H displace hydrogen (e.g. Zn + 2HCl → ZnCl₂ + H₂); metals below H (Cu, Hg, Ag, Au) do not.
  • Displacement: a higher metal displaces a lower one from its salt solution.

8. Reduction of Metal Oxides

  • Oxides of K, Na, Ca, Mg, Al cannot be reduced by C, CO or H₂ → extracted by electrolysis.
  • Oxides below Al (Zn, Fe, Pb, Cu) can be reduced by C / CO / H₂:
- CuO + H₂ → Cu + H₂O · PbO + C → Pb + CO · Fe₂O₃ + 3CO → 2Fe + 3CO₂
  • Oxides of Hg, Ag decompose on heating alone (2HgO → 2Hg + O₂).

9. Action of Heat on Metallic Compounds

CompoundK, NaCa, Mg, Al, Zn, Fe, Pb, CuHg, Ag
Carbonatesstable (K, Na)→ oxide + CO₂ (e.g. ZnCO₃ → ZnO + CO₂)→ metal + CO₂ + O₂
Hydroxidesstable→ oxide + H₂O (e.g. Cu(OH)₂ → CuO + H₂O)→ metal + O₂ + H₂O
Nitrates→ nitrite + O₂→ oxide + NO₂ + O₂→ metal + NO₂ + O₂

10. Corrosion

  • Corrosion: slow eating away of a metal surface by air, moisture or chemicals.
  • Rusting = corrosion of iron: 4Fe + 3O₂ + 2xH₂O → 2Fe₂O₃·xH₂O (brown, flaky → keeps exposing fresh iron). Needs both air (O₂) and water.
  • Other corrosion: Pb → basic lead carbonate (white); Cu → green basic copper carbonate; Ag → black Ag₂S (tarnish).
  • Faster when: salt/electrolyte present (sea air), pollutants (CO₂, NO₂), reactive metal, impurities.
  • Prevention: (i) Barrier — oiling, painting, electroplating; (ii) Galvanisation — coating iron with zinc; (iii) Sacrificial / cathodic protection — attach a more reactive metal (Zn, Mg) that corrodes instead (used for pipelines, ships).
  • Advantage: Al and Zn form a sticky, impervious oxide layer that protects the metal beneath.

11. Occurrence & Ores

  • Mineral: any natural compound of a metal. Ore: a mineral from which the metal is extracted profitably.
  • Gangue: earthy impurities (sand, silica). Flux: added to remove gangue → flux + gangue → slag (fusible). Smelting: reduction of roasted oxide using a flux.
MetalMain ore(s)
NaRock salt NaCl
CaLimestone CaCO₃
AlBauxite Al₂O₃·2H₂O, Cryolite Na₃AlF₆
ZnZinc blende ZnS, Calamine ZnCO₃
FeHaematite Fe₂O₃
PbGalena PbS
CuCopper pyrites CuFeS₂
AgArgentite Ag₂S

12. Steps of Extraction (Metallurgy)

Ore → Crushing/grinding → Concentration → Roasting/Calcination → Reduction → Refining → Pure metal
  • Concentration (dressing): gravity separation, froth flotation (sulphide ores), magnetic separation (e.g. iron ores), chemical/leaching.
  • Roasting: heat ore strongly in air (sulphide → oxide, e.g. 2ZnS + 3O₂ → 2ZnO + 2SO₂).
  • Calcination: heat in limited/no air (carbonate/hydrated → oxide, e.g. ZnCO₃ → ZnO + CO₂).
  • Reduction: oxide → metal (carbon reduction or electrolytic reduction for reactive metals).

13. Extraction of Aluminium (from Bauxite)

(a) Purification — Baeyer's process: bauxite + hot NaOH → soluble sodium aluminate (Al₂O₃ + 2NaOH → 2NaAlO₂ + H₂O); insoluble Fe₂O₃/SiO₂ filtered off. Seeding/dilution precipitates Al(OH)₃, which on heating gives pure alumina (Al₂O₃). (b) Electrolytic reduction (Hall–Héroult):
  • Electrolyte: molten Al₂O₃ dissolved in molten cryolite (Na₃AlF₆) + fluorspar (CaF₂) — these lower the melting point (~2050 °C → ~950 °C) and increase conductivity.
  • Cathode: carbon (graphite) lining → Al³⁺ + 3e⁻ → Al (molten Al collects at the bottom).
  • Anode: carbon blocks → 2O²⁻ → O₂ + 4e⁻; the O₂ burns the carbon anode to CO₂, so anodes are replaced periodically.

14. Common Alloys

AlloyCompositionUses
SteelFe + C (0.1–1.5%)construction, tools
Stainless steelFe + Cr + Nicutlery, utensils
DuraluminAl + Cu + Mg + Mnaircraft (light & strong)
BrassCu + Znutensils, fittings
BronzeCu + Snstatues, coins, medals
SolderPb + Snjoining/soldering wires
Fuse metalPb + Sn + Bisafety fuses (low M.P)
Quick recall: Activity series order; metals above Al → electrolysis, below Al → C/CO/H₂. Rusting needs air + water. Aluminium: bauxite → Baeyer's → electrolysis in cryolite (cathode Al, anode O₂). Roasting = in air (sulphides); calcination = without air (carbonates).