NVAEasyJEE 2023Covalent Bonding & Lewis Structures

JEE Chemistry 2023 Question with Solution

The number of molecules or ions from the following, which do not have an odd number of electrons, are ——: (A) NO2\mathrm{NO}_2 (B) ICl4\mathrm{ICl}_4^- (C) BrF3\mathrm{BrF}_3 (D) ClO2\mathrm{ClO}_2 (E) NO2+\mathrm{NO}_2^+ (F) NO\mathrm{NO}

Answer

Correct answer:3

Step-by-step solution

Standard Method

Given: The species are NO2\mathrm{NO}_2, ICl4\mathrm{ICl}_4^-, BrF3\mathrm{BrF}_3, ClO2\mathrm{ClO}_2, NO2+\mathrm{NO}_2^+, and NO\mathrm{NO}.

Find: The number of species that do not have an odd number of electrons.

Odd-electron species have an odd total number of electrons. So, count total valence electrons for each species.

  1. For NO2\mathrm{NO}_2:
N(5)+O(6)+O(6)=17\mathrm{N}(5) + \mathrm{O}(6) + \mathrm{O}(6) = 17

This is odd.

  1. For ICl4\mathrm{ICl}_4^-:
I(7)+4Cl(4×7)+1=36\mathrm{I}(7) + 4\mathrm{Cl}(4 \times 7) + 1 = 36

This is even.

  1. For BrF3\mathrm{BrF}_3:
Br(7)+3F(3×7)=28\mathrm{Br}(7) + 3\mathrm{F}(3 \times 7) = 28

This is even.

  1. For ClO2\mathrm{ClO}_2:
Cl(7)+O(6)+O(6)=19\mathrm{Cl}(7) + \mathrm{O}(6) + \mathrm{O}(6) = 19

This is odd.

  1. For NO2+\mathrm{NO}_2^+:
N(5)+O(6)+O(6)1=16\mathrm{N}(5) + \mathrm{O}(6) + \mathrm{O}(6) - 1 = 16

This is even.

  1. For NO\mathrm{NO}:
N(5)+O(6)=11\mathrm{N}(5) + \mathrm{O}(6) = 11

This is odd.

Species without odd electrons are ICl4\mathrm{ICl}_4^-, BrF3\mathrm{BrF}_3, and NO2+\mathrm{NO}_2^+.

Therefore, the required number is 33.

Electron Count Classification

Given: Determine which listed species have an even total number of electrons.

Find: Total count of species that are not odd-electron species.

Classify each one by total valence electron count:

  • NO217\mathrm{NO}_2 \rightarrow 17 electrons, so odd
  • ICl436\mathrm{ICl}_4^- \rightarrow 36 electrons, so even
  • BrF328\mathrm{BrF}_3 \rightarrow 28 electrons, so even
  • ClO219\mathrm{ClO}_2 \rightarrow 19 electrons, so odd
  • NO2+16\mathrm{NO}_2^+ \rightarrow 16 electrons, so even
  • NO11\mathrm{NO} \rightarrow 11 electrons, so odd

Thus, exactly three species have an even number of electrons.

Therefore, the final answer is 33.

Common mistakes

  • Counting total electrons instead of valence electrons. The criterion here is based on valence-electron count for Lewis species classification, so use outer-shell electrons only.

  • Ignoring the ionic charge in ICl4\mathrm{ICl}_4^- and NO2+\mathrm{NO}_2^+. A negative charge adds one electron, while a positive charge removes one electron.

  • Assuming that all neutral molecules must have an even number of electrons. Neutral species such as NO\mathrm{NO} and NO2\mathrm{NO}_2 can still be odd-electron species.

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