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

  • 1Explain why atoms form bonds — the octet rule and stability
  • 2Describe ionic bonding: electron transfer between metals and non-metals; give examples
  • 3Describe covalent bonding: electron sharing between non-metals; distinguish single, double, triple bonds
  • 4Draw electron dot structures (Lewis structures) for ionic and covalent compounds
  • 5Compare properties of ionic and covalent compounds (melting point, conductivity, solubility)
💡
Why this chapter matters
Chemical Bonding explains WHY atoms combine — the fundamental reason for all chemistry. Understanding ionic (electrovalent) and covalent bonds, drawing Lewis (dot-cross) diagrams, and distinguishing bond types from properties are tested in AP SSC. Drawing dot structures for NaCl, MgO, H₂O, CH₄, CO₂ is a standard 2–4 mark question. The properties table (high/low melting point, solubility, conductivity) distinguishes ionic from covalent compounds.

Before you start — revise these

A 5-minute refresher here will save you 30 minutes of confusion below.

Chemical Bonding — Class 10 Physical Science

"Atoms bond to become STABLE. The noble gases already ARE stable. Every other atom is trying to become one. This is the OCTET RULE."

1. The Octet Rule

Atoms combine to achieve 8 ELECTRONS in their OUTERMOST SHELL (octet) — the stable configuration of NOBLE GASES. Exceptions: Hydrogen and Helium — stable with 2 electrons (duet). Atoms achieve octet by: TRANSFER of electrons (ionic bond). SHARING of electrons (covalent bond).

2. Ionic (Electrovalent) Bond — Electron TRANSFER

Metal (low ionisation energy) → LOSES electron(s) → CATION (+). Non-metal (high electron affinity) → GAINS electron(s) → ANION (−). Electrostatic ATTRACTION between opposite ions forms the bond.

Example — NaCl: Na (2,8,1) → loses 1e⁻ → Na⁺ (2,8) — neon configuration. Cl (2,8,7) → gains 1e⁻ → Cl⁻ (2,8,8) — argon configuration. Na⁺ + Cl⁻ → NaCl.

Properties of Ionic Compounds: HIGH melting and boiling points (strong electrostatic forces throughout crystal lattice). CONDUCT electricity when MOLTEN or in AQUEOUS SOLUTION (ions are FREE to move). Do NOT conduct in SOLID state (ions locked in lattice). BRITTLE (crystal layers shift → like charges repel → shatter). Usually SOLUBLE in water. 'NaCl does NOT conduct electricity as a SOLID. It must be MOLTEN (melted) or DISSOLVED for the ions to move freely.'

3. Covalent Bond — Electron SHARING

Two non-metals SHARE valence electrons. Each atom counts the shared electrons toward its octet. Single bond: 1 shared pair (H−H, Cl−Cl). Double bond: 2 shared pairs (O=O). Triple bond: 3 shared pairs (N≡N).

Properties of Covalent Compounds: LOW melting and boiling points (weak INTERMOLECULAR forces — molecules are separate, not in a lattice). Do NOT conduct electricity (no ions, no free electrons). Usually INSOLUBLE in water. Soluble in ORGANIC solvents (alcohol, acetone).

4. Lewis Dot Structures

Show VALENCE ELECTRONS as DOTS around the element symbol. Electrons are paired. For compounds: show shared pairs as lines or dot pairs between atoms.

5. Common Mistakes

  1. 'NaCl molecules exist independently' — NaCl is an IONIC COMPOUND — a giant CRYSTAL LATTICE. Individual 'NaCl molecules' don't exist in the solid. The formula NaCl represents the simplest RATIO (1:1), not a discrete molecule.
  2. 'Covalent bonds are weaker than ionic' — The INTRA-molecular covalent bond (within a molecule) is very STRONG. The INTER-molecular forces (between molecules) are WEAK — which is why covalent compounds have LOW melting points.

6. AP SSC Exam Focus

TopicMarks
Ionic bond formation (NaCl, MgO)3-4
Ionic vs Covalent properties3-4
Lewis dot structures2-3

7. Covalent Bonding — Deep Dive

Types of Covalent Bonds

Bond TypeShared PairsExampleLewis Structure
Single Bond1 pairH−H, H−Cl, Cl−ClH:H or H−H
Double Bond2 pairsO=O, C=O:O::O: or O=O
Triple Bond3 pairsN≡N, C≡H:N:::N: or N≡N

Example — Formation of H₂O: Oxygen atom: 2, 6 (needs 2 more electrons for octet) Each Hydrogen atom: 1 (needs 1 more electron for duet) Oxygen shares 1 electron with EACH hydrogen atom, forming TWO single covalent bonds. Lewis structure: H−Ö−H (with 2 LONE PAIRS on oxygen — 4 unshared electrons)

'In H₂O, oxygen has TWO bond pairs and TWO lone pairs. The lone pairs cause the bent shape. This is why water is a BENT molecule, not linear.'

Example — Formation of CO₂: Carbon atom: 2, 4 (needs 4 more electrons for octet) Each Oxygen atom: 2, 6 (needs 2 more for octet) Carbon forms a DOUBLE bond with EACH oxygen. Structure: O=C=O 'Each double bond has 4 shared electrons — 2 from carbon and 2 from oxygen.'

Covalent Bonding in Carbon Compounds

Carbon has 4 valence electrons. It forms 4 COVALENT bonds to complete octet. This is the basis of ORGANIC CHEMISTRY (covered in detail in Class 10 Carbon and its Compounds chapter). 'Methane CH₄ has 4 single bonds. Ethene C₂H₄ has one double bond between carbons. Ethyne C₂H₂ has one triple bond between carbons.'


8. Polarity in Covalent Bonds

A covalent bond can be:

TypeDescriptionExample
Non-polar CovalentElectrons shared EQUALLY. Same atoms or similar electronegativity.H−H, Cl−Cl, C−H
Polar CovalentElectrons pulled MORE toward one atom. Unequal sharing.H−Cl, H−O, C−Cl

Electronegativity Difference determines polarity:

ΔENBond Type
0 to 0.4Non-polar covalent
0.5 to 1.7Polar covalent
> 1.7Ionic (or very polar covalent)

'Polar covalent bonds create partial charges: δ+ on the less electronegative atom, δ− on the more electronegative atom. In HCl, H has δ+ and Cl has δ−.'


9. Metallic Bonding

Metallic Bond: The electrostatic attraction between a LATTICE of positive metal ions and a SEA of DELOCALISED electrons.

Properties Explained by Metallic Bonding

PropertyExplanation
Good conductors of electricityDelocalised electrons are FREE to move and carry charge
Good conductors of heatDelocalised electrons transfer kinetic energy RAPIDLY
Malleable and ductileLayers of ions can SLIDE over each other without breaking bonds — the electron sea holds them together
High melting pointsStrong electrostatic attraction between ions and electron sea
Lustre (shiny)Free electrons reflect light

'Metals are NOT giant molecules with covalent bonds. They are a lattice of positive ions SURROUNDED by a sea of mobile electrons. This is why you can hammer gold into THIN FOIL without shattering it.'


10. Comparison of Bond Types — Summary Table

PropertyIonicCovalentMetallic
Bond formed byElectron TRANSFERElectron SHARINGElectron SEA
BetweenMetal + Non-metalNon-metal + Non-metalMetal atoms
Melting/Boiling PointHIGHLOWHigh (varies)
Electrical conductivityIn molten/aqueous solutionDoes NOT conductCONDUCTS (solid/liquid)
Solubility in waterUsually SOLUBLEUsually INSOLUBLEInsoluble
Solubility in organic solventsInsolubleSOLUBLEInsoluble
StructureCrystal latticeDiscrete moleculesLattice of ions in electron sea
ExampleNaCl, MgO, CaCl₂H₂O, CO₂, CH₄, C₆H₁₂O₆Fe, Cu, Au, Al

11. Lewis Dot Structures — More Examples

Step-by-Step Method for Drawing Lewis Structures

  1. Count TOTAL valence electrons.
  2. Identify the CENTRAL atom (usually the least electronegative).
  3. Connect atoms with SINGLE bonds (2 electrons each).
  4. DISTRIBUTE remaining electrons as LONE PAIRS to satisfy octet (8 for main group, 2 for H).
  5. If octet is not complete, form DOUBLE or TRIPLE bonds.

Example — NH₃ (Ammonia): N: 5 valence electrons, H: 1 each × 3 = 3. Total = 8 valence electrons. Structure: H−N−H with one lone pair on N. H

Example — CH₄ (Methane): C: 4, H: 1×4 = 4. Total = 8. Structure: Tetrahedral with C in centre, 4 H atoms at corners. All single bonds, NO lone pairs.

Example — C₂H₄ (Ethene): C: 4×2 = 8, H: 1×4 = 4. Total = 12. H₂C=CH₂ — Double bond between carbon atoms.


12. Common Mistakes — Expanded

MistakeCorrection
'Ionic compounds have molecules'Ionic compounds have CRYSTAL LATTICES. No discrete molecules.
'Covalent bonds are weak'INTRAmolecular covalent bonds are STRONG. INTERmolecular forces are weak.
'All metals are ionic'Metals have METALLIC bonding — a sea of delocalised electrons.
'NaCl conducts electricity as solid'Only when MOLTEN or DISSOLVED. Ions must be FREE to move.
'Water has a linear shape'Water is BENT due to lone pair repulsion (104.5°).
'Double bond is twice as strong as single'A double bond is STRONGER than a single bond but NOT twice — about 1.5×.

13. AP SSC Exam Focus — Expanded

TopicMarksFrequency
Ionic bond formation (NaCl, MgO, CaCl₂)3-4Very High
Ionic vs Covalent properties3-4Very High
Lewis dot structures2-3High
Metallic bonding2-3Moderate
Polarity of bonds2Moderate
Types of covalent bonds (single/double/triple)2-3High

14. Self-Test Questions

  1. Explain the formation of MgO showing electron transfer. Show the Lewis structures.
  2. Why do ionic compounds have HIGH melting points?
  3. Draw the Lewis dot structure of CH₄, NH₃, and H₂O.
  4. Why does NaCl conduct electricity when molten but NOT as a solid?
  5. Differentiate between ionic, covalent, and metallic bonding.
  6. What is a polar covalent bond? Give an example.
  7. Explain why covalent compounds are generally INSOLUBLE in water but SOLUBLE in organic solvents.
  8. Draw the electron dot structure of N₂ (nitrogen gas showing triple bond).
  9. Why are metals malleable but ionic compounds are brittle?
  10. Arrange NaCl, CCl₄, and Fe in increasing order of melting point.

Answers: 1) Mg loses 2e⁻ → Mg²⁺, O gains 2e⁻ → O²⁻, Mg²⁺O²⁻. 2) Strong electrostatic forces throughout the crystal lattice require LARGE energy to break. 3) CH₄: tetrahedral, NH₃: trigonal pyramidal with 1 lone pair, H₂O: bent with 2 lone pairs. 4) Solid state: ions locked in lattice. Molten: ions FREE to move. 5) See comparison table above. 6) Unequal sharing due to electronegativity difference — e.g., H−Cl. 7) Covalent compounds are non-polar. Water is POLAR. 'Like dissolves like' — non-polar dissolves in non-polar (organic solvents). 8) N≡N: with 3 shared pairs and 1 lone pair on each N. 9) Metals: layers SLIDE (electron sea holds). Ionic: layers SHIFT → like charges REPEL → shatter. 10) CCl₄ < Fe < NaCl (covalent < metallic < ionic).

Key formulas & results

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

Ionic vs Covalent Bonding
IONIC BOND: Formed by TRANSFER of electrons from metal to non-metal. Metal LOSES electrons → becomes cation (+). Non-metal GAINS electrons → becomes anion (−). Example: Na (2,8,1) → loses 1e⁻ → Na⁺ (2,8). Cl (2,8,7) → gains 1e⁻ → Cl⁻ (2,8,8). Na⁺ + Cl⁻ → NaCl. COVALENT BOND: Formed by SHARING of electrons between non-metals. Single bond: 1 shared pair. Double bond: 2 shared pairs (O=O). Triple bond: 3 shared pairs (N≡N). PROPERTIES COMPARISON: IONIC: High MP/BP. Conduct electricity when molten/dissolved. Soluble in water. Hard and brittle. COVALENT: Low MP/BP. Poor conductors. Soluble in organic solvents. Volatile.
DRAWING DOT STRUCTURES: (1) Count valence electrons of all atoms. (2) Central atom in middle. (3) Place electrons to satisfy octet (2 for H) for all atoms. EXAMPLES: H₂O — 2 O-H bonds + 2 lone pairs on O. CO₂ — C=O double bonds on both sides. NH₃ — 3 N-H bonds + 1 lone pair on N. CH₄ — 4 C-H bonds. NaCl ionic — show electron transfer with dot-cross diagram: Na[·] [⋅⋅Cl⋅⋅] → Na⁺ [⋅⋅Cl⋅⋅]⁻.
⚠️

Common mistakes & fixes

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

WATCH OUT
Confusing ionic and covalent bonding formation conditions
IONIC bonds form between METAL and NON-METAL. The metal transfers electrons to the non-metal. The large electronegativity difference drives the transfer. COVALENT bonds form between NON-METAL and NON-METAL (including hydrogen). They SHARE electrons because neither atom can fully take electrons from the other. RULE: Metal + Non-metal → IONIC. Non-metal + Non-metal → COVALENT.

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 Chemical Bonding?

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

1 questions~2 min

5-minute revision

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

  • Atoms bond to achieve a stable configuration — usually 8 electrons in outermost shell (OCTET RULE). Hydrogen aims for 2 (DUPLET RULE).
  • IONIC BOND: transfer of electrons from metal to non-metal. Metal LOSES electrons → forms positive cation. Non-metal GAINS electrons → forms negative anion. Strong electrostatic attraction between ions.
  • COVALENT BOND: SHARING of electron pairs between non-metals. Each atom contributes one electron per shared pair.
  • SINGLE bond: one shared pair (e.g., H−H in H₂, H−Cl in HCl). DOUBLE bond: two shared pairs (e.g., O=O in O₂, O=C=O in CO₂). TRIPLE bond: three shared pairs (e.g., N≡N in N₂, C≡C in alkynes).
  • IONIC compound properties: high melting/boiling point (strong ionic lattice), conducts electricity when dissolved in water or melted (ions free to move), soluble in water (polar solvent), does NOT conduct as solid (ions fixed). Example: NaCl.
  • COVALENT compound properties: low melting/boiling point (weak intermolecular forces), does NOT conduct electricity (no ions/free electrons), may or may not dissolve in water. Examples: H₂O, CO₂, HCl (gas).
  • Lewis dot structure: represent only the valence electrons as dots around the element symbol. Shared pairs are drawn as lines (bonds) between atoms.
  • NaCl formation: Na (2,8,1) → loses 1 electron → Na⁺ (2,8) octet achieved. Cl (2,8,7) → gains 1 electron → Cl⁻ (2,8,8) octet achieved. Ionic bond formed by electrostatic attraction.
  • MgO formation: Mg (2,8,2) → loses 2 electrons → Mg²⁺. O (2,6) → gains 2 electrons → O²⁻. Both achieve octet.
  • Coordinate (dative) bond: one atom provides BOTH electrons of the shared pair. Example: NH₄⁺ — NH₃ donates its lone pair to H⁺.

Andhra Pradesh (BIEAP) marks blueprint

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

Where this shows up in the real world

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

Salt in food and physiology

Table salt (NaCl) is the most common ionic compound in daily life. In the body, Na⁺ and Cl⁻ ions regulate osmotic pressure, nerve impulse transmission, and muscle contraction. Understanding ionic bonding explains why salt dissolves in water (polar solvent breaks ionic lattice) and conducts electricity (free ions) — used in oral rehydration therapy (ORS) for dehydration treatment.

Water's unique properties from covalent bonding

Water's V-shape (two O-H covalent bonds at 104.5° angle) creates a polar molecule with partial positive (H) and partial negative (O) ends. This polarity drives hydrogen bonding between water molecules — explaining water's high surface tension, high specific heat capacity, high boiling point, and its role as the 'universal solvent.' All of this stems from the covalent bond structure drawn with Lewis dot notation.

Ionic vs covalent in pharmaceuticals

Drug design requires understanding bonding — ionic drugs (salts like sodium ibuprofen) dissolve quickly in the gut (rapid absorption). Covalent drugs are often less soluble but can cross cell membranes (lipid bilayers are non-polar — covalent/non-polar drugs pass through more easily). Pharmacists use this distinction to engineer drugs with the right solubility, absorption rate, and bioavailability.

Exam strategy

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

1
Dot structure drawing: for any molecule, count total valence electrons first. Then distribute them ensuring each atom achieves octet (or duplet for H). Check: total dots in your structure = total valence electrons calculated. For NaCl, show the electron transfer with arrows and final charges.
2
Ionic vs covalent comparison table: prepare a 5-row table (bond type, formed between, mechanism, properties: MP/BP, conductivity) — this is the most-tested format in AP SSC for this topic.
3
For ionic bond formation: always show electronic configurations of both atoms, the electron transfer, and the resulting electronic configurations of the ions (confirming octet).
4
For covalent bond: show the shared electron pair clearly in the dot structure. For double/triple bonds, show 2 or 3 shared pairs.
5
Coordinate bond: if asked about NH₄⁺ or H₃O⁺, mention that the lone pair of nitrogen/oxygen is donated to H⁺ to form the coordinate bond — this is a frequently tested 2-mark distinction.

Going beyond the textbook

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

STRETCH
Research VSEPR theory (Valence Shell Electron Pair Repulsion) — the shape of a molecule is determined by the repulsion between all electron pairs (bonding and lone pairs) around the central atom. This explains why water is bent (2 bonds + 2 lone pairs → tetrahedral electron geometry → bent shape), why NH₃ is pyramidal, and why CO₂ is linear.
STRETCH
Explore metallic bonding — the third type of bond (beyond ionic and covalent). In metals, valence electrons are delocalised (not belonging to any specific atom) and form a 'sea of electrons' that holds positive metal ions together. This explains electrical conductivity (free electrons), malleability (layers of ions can slide), and metallic lustre (free electrons reflect light).
STRETCH
Investigate hydrogen bonding as an intermolecular force — N-H, O-H, and F-H bonds create partial positive H atoms that attract partial negative N/O/F atoms in nearby molecules. Hydrogen bonding explains water's anomalously high boiling point (100°C vs −60°C expected from molecular weight), DNA double helix stability, and protein folding.
STRETCH
Research bond polarity and molecular polarity — a molecule can have polar bonds (unequal sharing) but be non-polar overall if the bond dipoles cancel (e.g., CO₂: two polar C=O bonds in a linear molecule cancel perfectly). This distinction matters for solubility: 'like dissolves like' — polar solvents dissolve polar solutes, non-polar solvents dissolve non-polar solutes.

Where else this chapter is tested

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

AP Board SSC (Class 10)High — ionic vs covalent comparison and Lewis dot structures are standard 4–6 mark questions
JEE Main / Advanced (Chemistry)Very High — Chemical Bonding is a high-weight chapter in Class 11 Chemistry with deep coverage in JEE
NEET (Chemistry section)High — bonding and molecular structure are tested extensively in Class 11 Chemistry for NEET
AP EAMCET (Engineering)High — chemical bonding is a core Class 11 Chemistry topic in EAMCET

Questions students ask

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

Electrical conductivity requires MOBILE CHARGED PARTICLES (ions or free electrons). In a solid ionic compound (like NaCl salt), ions are fixed in a rigid crystal lattice — they cannot move, so it cannot conduct. When dissolved in water, the lattice breaks apart and Na⁺ and Cl⁻ ions are free to move through the solution — conducting electricity. When melted (liquid state), the lattice again breaks and molten ions conduct. This distinction is important — ionic compounds ARE capable of conductance, but only when ions are free to move.

Ionic compounds have strong ELECTROSTATIC FORCES between oppositely charged ions — these require large amounts of energy to break. Melting a crystal requires separating all these ions. Covalent molecular compounds (like H₂O, CO₂, ethanol) have strong covalent bonds WITHIN each molecule, but only WEAK INTERMOLECULAR FORCES (van der Waals, hydrogen bonds) between molecules. Melting requires overcoming only these weak intermolecular forces — much less energy. This is why ice melts at 0°C but NaCl melts at 801°C.

Carbon has 4 valence electrons. Each oxygen has 6. Total valence electrons = 4 + 6 + 6 = 16. Carbon needs 4 bonds to complete octet. Each oxygen needs 2 bonds to complete octet. Solution: two C=O double bonds. Structure: O=C=O. Carbon: 4 bonds (8 electrons in bonding pairs) — octet satisfied. Each oxygen: 2 bonds (4 bonding electrons) + 2 lone pairs (4 non-bonding electrons) = 8 total — octet satisfied. Total electrons used: 4 bonding pairs × 2 = 8 + 4 lone pair electrons on each O × 2 = 8 + 8 = 16 (correct).

GENERALLY YES — bonding between non-metals involves covalent bond formation (electron sharing). However, hydrogen chloride (HCl) is a covalent compound as a gas, but forms H⁺ and Cl⁻ ions when dissolved in water (becomes hydrochloric acid). So HCl as a pure compound is covalent but behaves ionically in solution. Also, ammonium chloride (NH₄Cl) has both covalent bonds (within NH₄⁺) and ionic bonds (between NH₄⁺ and Cl⁻). Chemistry has interesting edge cases — always look at the specific compound.

The main deciding factor is the DIFFERENCE IN ELECTRONEGATIVITY between the bonding atoms. High difference (metal + non-metal, e.g., Na + Cl) → electron is completely transferred to the more electronegative atom → IONIC bond. Small difference (non-metal + non-metal with similar electronegativities, e.g., H + H, C + H) → electrons are shared → COVALENT bond. Large difference: >1.7 on Pauling scale = predominantly ionic. Small difference: <1.7 = predominantly covalent. Pure covalent = identical atoms (H₂, O₂, N₂).
Verified by the tuition.in editorial team
Last reviewed on 28 May 2026. Written and reviewed by subject-matter experts — read about our process.
Editorial process →
Header Logo