7.2 Zinc

7.2 Zinc | NEB Grade 12 Chemistry

🎯 Learning Outcomes

By the end of this topic, students should be able to:

  • Describe the occurrence of zinc
  • Describe the extraction of zinc
  • Describe properties (with air, acid, alkali, displacement reaction)
  • State the uses of zinc
  • Explain the chemistry (preparation, properties, and uses) of white vitriol
1 Zinc — Occurrence & Ores
Name
Zinc
Symbol
Zn
Free state
Does not occur free in nature
Most important ore
Zinc Blende (ZnS)

Occurrence

Zinc doesn’t exist in a free state, but exists as the following ores.

OreFormula
Zinc Blende (most important ore)ZnS
CalamineZnCO₃
ZinciteZnO
FrankliniteZnO·Fe₂O₃
Willimite2ZnO·SiO₂
2 Extraction — Crushing to Roasting

Zinc is extracted from zinc blende by the Carbon Reduction Process, which involves the following steps.

ACrushing and Pulverization

The ore is crushed in big jaw crushers and finely ground in ball mills.

BConcentration — by Froth Flotation
  • The powdered ore is mixed with water containing a little pine oil in a small tank.
  • Air is blown through the mixture.
  • ZnS particles stick to the froth and float to the top.
  • Impurities (gangue) settle at the bottom and are removed.
Froth flotation process diagram
Froth flotation process
CRoasting
  • The concentrated ore is heated to about 900°C in air.
  • Main reaction: the sulphide ore gets converted into oxide.
2ZnS + 3O2 Δ 2ZnO + 2SO2
  • During this process, some of the zinc sulphide is also converted into zinc sulphate.
2ZnS + 2O2 Δ ZnSO4
  • This later decomposes to give ZnO.
2ZnSO4 900°C 2ZnO + SO2 + O2
  • Moisture is removed.
  • Impurities such as S, P, As, etc. are removed as their respective volatile oxides.
S + O2 Δ SO2
P4 + 5O2 Δ 2P2O5
4As + 3O2 Δ 2As2O3
3 Extraction — Reduction & Refining
DReduction (Smelting)
  • Carried out in a vertical retort furnace.
  • Roasted ore (ZnO) + coke (2:1 ratio) is made into briquettes.
  • The briquettes are fed into the retort through the vertical furnace’s charging door.
  • The furnace is externally heated by producer gas (CO + N₂) at about 1400°C.
Vertical retort furnace for the extraction of zinc
Vertical retort furnace for the extraction of zinc
  • The oxide is reduced to metallic zinc and is vaporized.
ZnO + C Δ Zn + CO
  • The vapour (Zn + CO) is carried to the water-cooled condenser by the mild current of producer gas passed through the bottom of the furnace.
  • The condensed zinc is called zinc spelter (purity ~97–98%).
ERefining — Electrolysis
  • The zinc thus obtained contains Fe, Pb, Cd, As, Sb, etc. as impurities.
  • Impure zinc is made an anode, and pure zinc a cathode, placed in an acidified ZnSO₄ solution.
  • When electricity is passed, the metal from the anode dissolves into the solution.
At anode
Zn Zn2+ + 2e
  • The pure metal is deposited at the cathode.
At cathode
Zn2+ + 2e Zn(Pure)
  • The impurities remain at the bottom of the anode as anode mud.
Cell reaction
ZnSO4(Aqueous) Zn2+ + SO42−
  • By this process, 99.5% pure zinc is obtained.
+ Impure zinc block (anode) Pure zinc sheet (cathode) ZnSO₄ solution acidified with H₂SO₄ Anode mud
Electrolytic refining of zinc
4 Properties of Zinc
  • Bluish-white shining metal.
  • Brittle at room temperature (becomes malleable at 100–150°C).
  • Good conductor of heat and electricity.

4. Action of Air

Dry air — no reaction. Moist air — forms a protective basic carbonate layer:

4Zn + 3H2O + 2O2 + CO2 ZnCO3·3Zn(OH)2(Basic zinc carbonate)

On heating to 500°C, zinc burns with a greenish-blue flame, forming zinc oxide fumes. The white fluffy zinc oxide formed during burning is called Philosopher’s wool.

2Zn + O2 Δ 2ZnO

5. Action of Acid

With dilute hydrochloric acid and sulphuric acid, zinc gives hydrogen gas.

Zn + 2HCl ZnCl2 + H2
Zn + H2SO4 ZnSO4 + H2

Concentrated sulphuric acid reacts with zinc to give sulphur dioxide.

Zn + 2H2SO4(conc.) ZnSO4 + SO2 + 2H2O

With nitric acid, zinc gives a variety of products depending upon the concentration of the acid.

(a) Very dilute HNO₃ → ammonium nitrate

Zn + 2HNO3 Zn(NO3)2 + 2H  ] ×4
8H + HNO3 NH3 + 3H2O
NH3 + HNO3 NH4NO3

4Zn + 10HNO3 4Zn(NO3)2 + NH4NO3 + 3H2O

(b) Dilute HNO₃ → nitrous oxide (laughing gas)

Zn + 2HNO3 Zn(NO3)2 + 2H  ] ×4
8H + 2HNO3 N2O + 5H2O

4Zn + 10HNO3 4Zn(NO3)2 + N2O + 5H2O

(c) Moderately concentrated HNO₃ (1:1) → nitric oxide

Zn + 2HNO3 Zn(NO3)2 + 2H  ] ×3
3H + HNO3 NO + 2H2O  ] ×2

3Zn + 8HNO3 3Zn(NO3)2 + 2NO + 4H2O

(d) Concentrated HNO₃ → nitrogen peroxide

Zn + 2HNO3 Zn(NO3)2 + 2H
H + HNO3 NO2 + H2O  ] ×2

Zn + 4HNO3 Zn(NO3)2 + 2NO2 + 2H2O

6. Action with Alkali

When zinc is boiled with concentrated caustic alkali like NaOH, hydrogen is liberated.

Zn + 2NaOH Na2ZnO2 + H2

In aqueous solution, sodium zincate exists mainly as sodium tetrahydroxozincate(II), Na₂[Zn(OH)₄].

7. Displacement Reaction

Zinc displaces less electropositive metals like Cu, Ag, Au, etc. from their aqueous solutions.

CuSO4 + Zn Cu + ZnSO4
Zn + AgNO3 Zn(NO3)2 + Ag
Zn + HgCl2 ZnCl2 + Hg
5 Uses of Zinc
  • Galvanizing iron (coating iron with zinc to prevent rusting) — used in roofing sheets and construction materials.
  • Making alloys: brass, German silver, die casting alloys, etc.
  • As an electrode in electrochemical cells/batteries.
  • Production of zinc compounds like ZnO, ZnSO₄, etc.
  • In dyes, drugs, and paints.
6 White Vitriol (ZnSO₄·7H₂O)

Preparation

From zinc metal (with dilute H₂SO₄)

Zn + dil. H2SO4  ZnSO4 + H2

From zinc compounds

When oxides, carbonates, or hydroxides of zinc are treated with dilute H₂SO₄, ZnSO₄ is formed.

ZnO + H2SO4(Dilute) ZnSO4 + H2O
ZnCO3 + H2SO4(Dilute) ZnSO4 + CO2 + H2O
Zn(OH)2 + H2SO4(Dilute) ZnSO4 + 2H2O

From zinc blende

When zinc blende (ZnS) is roasted below 800°C with excess air, ZnSO₄ is formed.

ZnS + 2O2(Excess) Below 800°C ZnSO4

The aqueous solution obtained by any of the above methods is evaporated till the crystallization point to obtain white vitriol.

ZnSO4(Aqueous) Crystallization ZnSO4·7H2O(White vitriol)

Properties

  • White crystalline solid, highly soluble in water.
  • Efflorescent and loses water when exposed to air.

Action of Heat

When exposed to air above 30°C, it loses one water molecule. It loses six molecules of water at 100°C, and at 300°C anhydrous salt is formed. This anhydrous salt decomposes at 800°C to give SO₂ gas.

ZnSO4·7H2O above 30°C ZnSO4·6H2O + H2O
ZnSO4·6H2O 100°C ZnSO4·H2O + 6H2O
ZnSO4·H2O 300°C ZnSO4 + H2O
ZnSO4 above 800°C 2ZnO + 2SO2 + O2

Action with Alkali

When aqueous ZnSO₄ is treated with NaOH solution, a white precipitate of Zn(OH)₂ is formed.

ZnSO4(aq.) + 2NaOH Zn(OH)2(white ppt.) + Na2SO4

If excess NaOH is added, the precipitate dissolves due to the formation of sodium zincate.

Zn(OH)2 + 2NaOH(Excess) Na2ZnO2(Sodium zincate)

Formation of Double Salts

When an equimolar solution of potassium sulphate and zinc sulphate is subjected to crystallization, a double salt is formed (also written as ZnK₂(SO₄)₂·6H₂O).

ZnSO4 + K2SO4 + 6H2O Crystallization ZnSO4·K2SO4·6H2O(Double salt)

Action with Potassium Ferrocyanide

When white vitriol is treated with potassium ferrocyanide, a white precipitate of zinc ferrocyanide is formed.

2ZnSO4 + K4[Fe(CN)6] Zn2[Fe(CN)6](White ppt.) + K2SO4

Action with Barium Sulphide

Zinc sulphate reacts with barium sulphide to give lithopone (a white paint). It is not blackened by atmospheric hydrogen sulphide.

ZnSO4 + BaS ZnS + BaSO4(Lithopone)

Uses of White Vitriol

  • In medicine (eye drops and lotion).
  • In preparation of white pigment, lithopone.
  • As an electrolyte in the electrorefining of zinc.
  • In the preparation of double salts and other zinc compounds.

📘 Chapter Summary

  • Zinc does not occur free in nature — zinc blende (ZnS) is its most important ore.
  • Extracted by the carbon reduction process: roasting converts ZnS to ZnO, which is reduced by coke in a vertical retort furnace.
  • Electrolytic refining gives 99.5% pure zinc; impurities settle as anode mud.
  • Reacts with air, acids, and alkali — it is amphoteric, dissolving in both acids and strong bases.
  • Forms the important compound white vitriol, ZnSO₄·7H₂O.
⚠️ Don’t Confuse
Zinc blende → ZnS (ore)
Zinc spelter → impure Zn metal
White vitriol → ZnSO₄·7H₂O
Philosopher’s wool → ZnO fumes

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