Chapter 3
Metals and Non-metals
Preview Metals and Non-metals for Science in JAC 10.
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8. Reactivity Series
Definition
The Reactivity Series is the arrangement of metals in the decreasing order of their reactivity.
Reactivity Series (Most Reactive → Least Reactive)
Symbol Metal
K Potassium
Na Sodium
Ca Calcium
Mg Magnesium
Al Aluminium
Zn Zinc
Fe Iron
Pb Lead
(H) Hydrogen (Reference only)
Cu Copper
Hg Mercury
Ag Silver
Au Gold
Remember: Metals above hydrogen can displace hydrogen from dilute acids, while metals below hydrogen cannot.
Memory Trick
"Please Stop Calling Me A Zebra Instead Try Learning How Copper Saves Gold."
P – Potassium (K)
S – Sodium (Na)
C – Calcium (Ca)
M – Magnesium (Mg)
A – Aluminium (Al)
Z – Zinc (Zn)
I – Iron (Fe)
T – Tin (Sn)* (NCERT includes Pb instead of Sn in many tables; JAC mainly follows Pb after Fe.)
L – Lead (Pb)
H – Hydrogen
C – Copper (Cu)
S – Silver (Ag)
G – Gold (Au)
9. Displacement Reaction
A more reactive metal displaces a less reactive metal from its salt solution.
Example
Zn + CuSO₄ → ZnSO₄ + Cu
Observation:
Blue colour of CuSO₄ fades.
Brown copper metal is deposited.
10. Ionic Compounds
Definition
Compounds formed by the transfer of electrons from a metal to a non-metal are called ionic compounds.
Example
NaCl (Sodium Chloride)
Sodium loses 1 electron → Na⁺
Chlorine gains 1 electron → Cl⁻
Na⁺ + Cl⁻ → NaCl
Properties of Ionic Compounds
Hard and brittle.
High melting and boiling points.
Soluble in water.
Conduct electricity in molten state or aqueous solution.
Do not conduct electricity in solid state.
11. Extraction of Metals
Metals are extracted from their ores.
Steps
Mining
Concentration of Ore
Extraction of Metal
Refining (Purification)
Extraction Based on Reactivity
(A) Highly Reactive Metals
Examples:
Potassium
Sodium
Calcium
Method: Electrolysis
(B) Moderately Reactive Metals
Examples:
Zinc
Iron
Lead
Method: Reduction using carbon (coke).
Example:
ZnO + C → Zn + CO
(C) Least Reactive Metals
Examples:
…
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