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draw the lewis structure of hydrogen cyanide (hcn) and then determine t…

Question

draw the lewis structure of hydrogen cyanide (hcn) and then determine the hybridization of the central atom.

Explanation:

Step1: Calculate the total number of valence electrons

Hydrogen has 1 valence electron, carbon has 4 valence electrons, and nitrogen has 5 valence electrons. So, \(1 + 4+5 = 10\) valence electrons.

Step2: Draw the Lewis structure

Carbon is the central atom. Hydrogen forms a single bond with carbon (\(C - H\), using 2 electrons). Carbon forms a triple bond with nitrogen (\(C\equiv N\), using 6 electrons). There are \(10-(2 + 6)=2\) electrons left, which are placed as a lone - pair on nitrogen.

Step3: Determine the hybridization of the central atom (carbon)

Carbon has 2 electron - groups (one \(C - H\) single bond and one \(C\equiv N\) triple bond). According to the VSEPR (Valence - Shell Electron - Pair Repulsion) theory, the hybridization of an atom with 2 electron - groups is \(sp\).

Answer:

C. \(sp\)