Q.State Octet rule.
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🔒 Start your 14-day free trial to unlock the full solution →Concept understanding — Octet Rule and Exceptions
Why Eight? The Intuition
Look at the noble gases — helium, neon, argon. They sit at the far right of the periodic table and are famously unreactive. They don't form compounds easily. Why? Their outermost electron shell is completely filled. For helium, that's 2 electrons; for neon and argon, it's 8. A full shell is a state of low energy and high stability.
Atoms of other elements are restless. They want to reach that same stable configuration. They can do it by losing, gaining, or sharing electrons with other atoms. The octet rule is simply the observation that atoms in most stable molecules end up surrounded by eight valence electrons — the same electron count as the nearest noble gas.
The Precise Statement
Octet Rule: In chemical bonding, atoms tend to gain, lose, or share electrons so that each atom acquires eight electrons in its valence shell (the outermost s and p orbitals), achieving the electron configuration of the nearest noble gas.
The rule applies most cleanly to elements of the second period (Li through F) and the third period (Na through Cl). For hydrogen and helium, the stable number is 2 (a duet), not 8 — they mimic the configuration of helium.
How It Works in Practice
When sodium (electron configuration 2,8,1) meets chlorine (2,8,7), sodium loses its one outer electron and chlorine gains it. Sodium becomes Na⁺ (2,8) — a neon configuration — and chlorine becomes Cl⁻ (2,8,8) — an argon configuration. Both have octets. The ionic bond forms.
When two chlorine atoms share a pair of electrons, each chlorine now counts that shared pair as part of its own valence shell. Each ends up with 8 electrons around it. The covalent bond satisfies the octet for both.
When the Octet Rule Breaks Down
The octet rule is a useful guide, not a law of nature. Several classes of stable molecules violate it.
1. Incomplete Octet — Fewer Than 8 Electrons
Some elements are perfectly happy with fewer than eight valence electrons. These are typically elements from groups 1, 2, and 13.
- Hydrogen and lithium are stable with 2 electrons (a duet).
- Beryllium in BeCl₂ has only 4 electrons around it. Beryllium's electron configuration is 1s²2s²; it uses its two 2s electrons to form two bonds, and that's it. No octet.
- Boron in BF₃ has only 6 electrons around it. Boron has three valence electrons; it forms three bonds and stops. The molecule is stable and exists.
Do not assume that an incomplete octet automatically makes a molecule reactive. BF₃ is a stable gas at room temperature. It can accept an electron pair (it's a Lewis acid), but it does not need to.
2. Expanded Octet — More Than 8 Electrons
Elements in the third period and beyond have d-orbitals available in their valence shell. These d-orbitals can accommodate extra electrons, allowing the central atom to exceed an octet.
- Phosphorus in PCl₅ has 10 electrons around it. Phosphorus uses its 3s, three 3p, and one 3d orbital to form five bonds.
- Sulfur in SF₆ has 12 electrons around it. Sulfur uses its 3s, three 3p, and two 3d orbitals to form six bonds.
- Xenon in XeF₄ has 12 electrons around it. Even a noble gas can expand its octet under the right conditions.
Expanded octets are only possible for elements with n ≥ 3 (third period and below). Second-period elements like carbon, nitrogen, and oxygen can never have more than 8 valence electrons — they lack d-orbitals.
3. Odd-Electron Species — Unpaired Electrons
Some molecules have an odd total number of valence electrons. It is impossible for every atom to have an octet because electrons come in pairs. …
The octet rule describes the tendency of atoms to attain a stable eight-electron valence shell. …
Octet rule: atoms react to attain a stable octet (eight electrons) in their valence shell, like the nearest noble gas.
Kossel and Lewis's octet rule states that atoms of elements combine with each other (by transfer or by sharing of electrons) in order to complete their outermost shell with eight electrons, thereby attaining the stable electronic configuration of the nearest noble gas. This drives ionic bond formation (transfer of electrons) and covalent bond formation (s …
- CBSE 2025Set ANN1 markMCQQ.Analyse the following statements and choose the correct option : Statement I : Sodium chloride formed by the action of chlorine gas on sodium metal is a stable compound. Statement II : This is because sodium and chloride ions acquire octet in sodium chloride formation.(a) Both statement I and statement II are true and statement II is the correct explanation of statement I.(b) Both statement I and statement II are true but statement II is not the correct explanation of statement I.(c) Statement I is true but statement II is false.(d) Both statement I and statement II are false.
›Reveal solutionSolution
NaCl is stable (I true) because Na+ and Cl- both reach the octet (II true), and this is exactly why it is stable. Answer: (a).
- Statement I: NaCl formed from Na and Cl2 is a stable ionic compound - TRUE.
- Statement II: In its formation, Na loses one electron to become Na+ (2,8, the neon octet) and Cl gains it to become Cl- (2,8,8, the argon octet) - both acquire noble-gas octets - TRUE. …
- CBSE 2023Set ANNUAL1 markQ.Why does BF3 behave as Lewis acid?
›Reveal solutionSolution
BF3 behaves as a Lewis acid because boron in BF3 has only six electrons (an incomplete octet) around it, so it can accept an electron pair from a donor species.
In BF3, boron is sp2 hybridised and forms three B-F sigma bonds, using all three of its valence electrons. This leaves boron with only 6 electrons in its valence shell (an incomplete octet, one short of the stable octet of 8). Because of this electron deficiency, the boron atom in BF3 has a vacant (empty) 2p orbital and a strong tendency to accept a lone pair of electrons from an electron-rich species (a Lewis base) such as NH3 or F-, in order to complete its octet. A spe …
- CBSE 2023Set ANNUAL1 markQ.Define Octet rule.
›Reveal solutionSolution
The octet rule states that atoms tend to combine (by gaining, losing, or sharing electrons) so as to have eight electrons in their outermost (valence) shell, resembling the stable electronic configuration of the nearest noble gas.
Atoms are most stable when their valence shell contains 8 electrons (an octet), similar to the electronic configuration of noble gases (except helium, which is stable with 2 electrons — a duplet). To achieve this stable configuration, atoms lose, gain, or share electrons while forming ionic or covalent bonds. For example, Na loses one electron to form Na+ (octet like Ne), Cl gains one electron to form Cl- (octet like Ar), and in a covalent molecul …
- CBSE 2020Set ANNUAL1 markQ.Fill in the blank: Boron trifluoride BF3 is ___. (choose: Lewis acid / Lewis base)
›Reveal solutionSolution
BF3 is a Lewis acid because boron has an incomplete octet (only 6 electrons) and can accept an electron pair from a Lewis base.
A Lewis acid is defined as any species that can accept a pair of electrons, while a Lewis base is a species that can donate a pair of electrons.
In BF3, boron forms three single covalent bonds with the three fluorine atoms, using all 3 of its valence electrons. This leaves boron with only 6 electrons in its valence shell (an incomplete octet) and an empty 2p orbital. Because of this vacant orbital, BF3 has a strong tendency to accept a lone pair of electrons from an electron-rich species (such as NH3 or F-) …
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