The number of valence electrons present in the metal among Cr, Co, Fe, and Ni which has the lowest enthalpy of atomisation is
- A
- B
- C
- D
The number of valence electrons present in the metal among Cr, Co, Fe, and Ni which has the lowest enthalpy of atomisation is
Correct answer:C
Standard Method
Given: The metals are Cr, Co, Fe, and Ni.
Find: The number of valence electrons in the metal having the lowest enthalpy of atomisation.
From the solution, the electronic configurations and valence electrons are:
Using the stated trend in the solution, the metal with fewer valence electrons is taken to have weaker metallic bonding and hence lower enthalpy of atomisation. Therefore, among the given metals, Cr is identified as the one with the lowest enthalpy of atomisation.
So, the required number of valence electrons is . Therefore, the correct option is C.
Electron Configuration Comparison
Given: Compare Cr, Co, Fe, and Ni on the basis of valence electrons.
Find: Which one has the lowest enthalpy of atomisation, and then report its valence electrons.
List the configurations one by one:
Now count the valence electrons:
According to the extracted solution logic, the smallest valence-electron count corresponds to the lowest enthalpy of atomisation in this set. The smallest count is for Cr.
Hence, the number of valence electrons is , so the correct option is C.
Counting only the electrons as valence electrons is incorrect here, because for transition metals the and electrons are both considered in this context. Count the outer relevant and electrons together.
Mixing up the configurations of Cr and Fe leads to a wrong answer. Cr has the exceptional configuration , not . Use the correct anomalous configuration before counting.
Assuming the metal with the largest atomic number must have the lowest enthalpy of atomisation is wrong. The solution uses the valence-electron comparison trend, so compare bonding tendency through electron configuration instead of atomic number alone.
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