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Friday, August 14, 2026

Why are Group 18 elements called 'noble gases' in terms of electronic configuration?

📚 Chapter: Classification of Elements and Periodicity in Properties

📘 Detailed Solution

🔵 Step 1: Electronic Configuration of Group 18

Group 18 elements are called noble gases because their outermost electron shells are completely filled.

General Configuration:

ns2 np6

The only exception is Helium (He), whose configuration is:

He = 1s2

Thus, helium has a completely filled first shell containing two electrons.

🎬 Electronic Configuration Animation

Watch the outermost shell become completely filled:

2e⁻ 8e⁻ 8e⁻ 8e⁻
Completely Filled Valence Shell
⚛️ → 🛡️

Stable Electronic Configuration

🟢 Step 2: Why are they chemically stable?

A completely filled valence shell is a highly stable electronic arrangement. Therefore, noble gases have very little tendency to gain, lose or share electrons.

Complete Valence Shell → High Stability → Very Low Reactivity

🟣 Examples

Element Electronic Configuration Valence Electrons
He 1s2 2
Ne 1s2 2s2 2p6 8
Ar [Ne] 3s2 3p6 8
Kr [Ar] 3d10 4s2 4p6 8

✅ Final Answer

Group 18 elements are called noble gases because their outermost electron shells are completely filled. Their general valence-shell configuration is ns²np⁶, except helium, which has 1s². This stable configuration makes them very unreactive or chemically inert.

📝 20 MCQs with Answers

1. Group 18 elements are known as:

A) Alkali metals
B) Halogens
C) Noble gases
D) Transition elements
✅ Show Answer

C) Noble gases


2. The general valence-shell configuration of noble gases is:

A) ns¹
B) ns²np⁶
C) ns²np⁴
D) ns²np⁵
✅ Show Answer

B) ns²np⁶


3. Which is the exception to ns²np⁶ configuration?

A) Ne
B) Ar
C) He
D) Kr
✅ Show Answer

C) He


4. Helium has how many valence electrons?

A) 1
B) 2
C) 6
D) 8
✅ Show Answer

B) 2


5. Neon has the electronic configuration:

A) 1s²2s²2p⁶
B) 1s²2s²2p⁴
C) 1s²2s¹
D) 1s²2p⁶
✅ Show Answer

A) 1s²2s²2p⁶


6. Noble gases have a:

A) Half-filled outer shell
B) Completely filled outer shell
C) Empty outer shell
D) Single electron
✅ Show Answer

B) Completely filled outer shell


7. Which noble gas has only one occupied shell?

A) He
B) Ne
C) Ar
D) Kr
✅ Show Answer

A) He


8. Noble gases generally have:

A) High reactivity
B) Very low reactivity
C) Strong metallic character
D) High tendency to form ions
✅ Show Answer

B) Very low reactivity


9. Which element belongs to Group 18?

A) Cl
B) Na
C) Ar
D) Mg
✅ Show Answer

C) Ar


10. The octet is complete when the valence shell contains:

A) 2 electrons
B) 4 electrons
C) 6 electrons
D) 8 electrons
✅ Show Answer

D) 8 electrons


11. Which noble gas is the lightest?

A) He
B) Ne
C) Ar
D) Kr
✅ Show Answer

A) He


12. Which of the following has a stable octet?

A) Ne
B) Na
C) Mg
D) Al
✅ Show Answer

A) Ne


13. Argon belongs to:

A) Group 1
B) Group 2
C) Group 17
D) Group 18
✅ Show Answer

D) Group 18


14. The low reactivity of noble gases is mainly due to:

A) Large size
B) Complete valence shell
C) Low mass
D) Metallic character
✅ Show Answer

B) Complete valence shell


15. Which one has configuration 1s²2s²2p⁶?

A) He
B) Ne
C) Ar
D) Kr
✅ Show Answer

B) Ne


16. Noble gases generally have:

A) High ionisation enthalpy
B) Low ionisation enthalpy
C) Zero electrons
D) One valence electron
✅ Show Answer

A) High ionisation enthalpy


17. Which one is NOT a noble gas?

A) Xe
B) Rn
C) Cl
D) Ne
✅ Show Answer

C) Cl


18. Group 18 elements are located in the:

A) Leftmost column
B) Middle
C) Rightmost column
D) Bottom only
✅ Show Answer

C) Rightmost column


19. Which element has a duplet configuration?

A) He
B) Ne
C) Ar
D) Kr
✅ Show Answer

A) He


20. The term "noble gas" indicates:

A) High chemical activity
B) Relative chemical inertness
C) Metallic nature
D) Radioactivity
✅ Show Answer

B) Relative chemical inertness

1. Why are noble gases chemically less reactive?

Solution: Noble gases have completely filled valence shells. Therefore, they have little tendency to gain, lose or share electrons.

2. Write the general electronic configuration of Group 18 elements.

Solution: The general configuration is ns²np⁶, except helium, which has 1s².

3. Why is helium placed in Group 18?

Solution: Helium has a completely filled first shell with two electrons and shows the characteristic low reactivity of noble gases.

4. What is meant by a complete valence shell?

Solution: A valence shell is complete when it contains its maximum permitted number of electrons. For most noble gases it contains eight electrons.

5. Write the electronic configuration of neon.

Solution: Ne = 1s² 2s² 2p⁶.

1. Explain why Group 18 elements are called noble gases.

Solution:

  1. They possess completely filled valence shells.
  2. Their general configuration is ns²np⁶, except He.
  3. This stable configuration makes them chemically very less reactive.

2. Compare the electronic configurations of He and Ne.

Solution:

ElementConfigurationValence electrons
He1s²2
Ne1s²2s²2p⁶8
Both have completely filled outer shells.

3. Explain the relationship between electronic configuration and chemical stability of noble gases.

Solution: Their outermost shells are completely filled. Hence, they have very little tendency to participate in electron transfer or sharing, resulting in high chemical stability and low reactivity.

1. Explain the electronic configuration of Group 18 elements and why it makes them stable.

Solution:

Group 18 elements have completely filled valence shells. Their general configuration is ns²np⁶. Helium is an exception with 1s².

The complete valence shell provides a highly stable arrangement. Therefore, these elements have little tendency to gain, lose or share electrons. Consequently, they are chemically very less reactive.

Filled Shell → Stability → Low Reactivity

2. Explain why noble gases generally do not form ions.

Solution:

Noble gases have stable and completely filled valence shells. Removing an electron requires high energy, while adding another electron would require starting a new shell. Hence, formation of simple ions is energetically unfavourable under ordinary conditions.

1. Discuss the electronic configuration and chemical stability of noble gases with examples.

Solution:

Noble gases belong to Group 18 of the periodic table. Their outermost shells are completely filled.

  • Helium: 1s²
  • Neon: 1s²2s²2p⁶
  • Argon: [Ne]3s²3p⁶
  • Krypton: [Ar]3d¹⁰4s²4p⁶

Except helium, their general valence-shell configuration is ns²np⁶.

Because their valence shells are complete, they have very little tendency to gain, lose or share electrons. Hence they are highly stable and generally chemically unreactive.

Complete Valence Shell = High Stability = Noble Gas Character

2. Explain why the noble gases have very high ionisation enthalpy and low reactivity.

Solution:

Noble gases have stable electronic configurations with completely filled valence shells. Their electrons are strongly held by the nucleus, so removing an electron requires considerable energy. Therefore, they possess high ionisation enthalpy.

Since gaining or losing electrons is difficult, they generally show very low chemical reactivity.

1. Explain in detail why Group 18 elements are called noble gases. Discuss their electronic configuration, stability and chemical reactivity.

Solution:

Group 18 elements are called noble gases because they possess completely filled valence shells and consequently show very low chemical reactivity.

1️⃣ Electronic Configuration

The general valence-shell configuration is:

ns²np⁶

The exception is helium:

He = 1s²

2️⃣ Complete Valence Shell

The outermost shell of a noble gas is completely filled. This provides a highly stable electronic arrangement.

3️⃣ High Stability

Because of the stable configuration, noble gases do not easily gain, lose or share electrons.

4️⃣ High Ionisation Enthalpy

Their electrons are strongly held by the nucleus. Therefore, a large amount of energy is required to remove an electron.

5️⃣ Low Reactivity

Their tendency to participate in chemical reactions is very low. Hence, they are described as noble or inert gases.

6️⃣ Examples

Element Configuration
He 1s²
Ne 1s²2s²2p⁶
Ar [Ne]3s²3p⁶
Kr [Ar]3d¹⁰4s²4p⁶
Therefore, Group 18 elements are called noble gases because their completely filled valence shells give them exceptional electronic stability and very low chemical reactivity.

🎯 Quick Revision

Group 18 = Noble Gases
General Configuration = ns²np⁶
Helium = 1s²
Complete Valence Shell = High Stability
High Stability = Very Low Reactivity