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Exercises · 4.21

Q.Apart from tetrahedral geometry, another possible geometry for CH4CH_4 is square planar with the four H atoms at the corners of the square and the C atom at its centre. Explain why CH4CH_4 is not square planar?

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VSEPR theory predicts that four electron pairs around carbon adopt a tetrahedral arrangement (bond angle 109.5°109.5°) to minimize repulsion; square planar geometry would force 90°90° angles between bonding pairs, creating far greater electron–electron repulsion and making the structure unstable.

The question asks us to use fundamental principles of molecular geometry to rule out a square planar structure for methane. The key lies in understanding how electron pairs arrange themselves in space.

Why VSEPR Theory governs molecular shape

Valence Shell Electron Pair Repulsion (VSEPR) theory rests on a simple physical idea: electron pairs—whether bonding or lone pairs—are negatively charged clouds that repel one another. To minimize this repulsion, they spread out as far apart as possible in three-dimensional space. The geometry that maximizes the distance between electron pairs is the one nature adopts.

For a central atom surrounded by four electron pairs, we need to ask: what arrangement in 3D space keeps them maximally separated?

Comparing the two geometries

Let's examine both proposed structures for CH4CH_4:

  1. Tetrahedral geometry

    The carbon atom sits at the center of a regular tetrahedron, with the four hydrogen atoms at the vertices. Every H−C−H\ce{H-C-H} bond angle is 109.5°109.5°. This is the geometry of four points on a sphere that are as far apart as possible—it's the solution to maximizing mutual distances in three dimensions.

  2. Square planar geometry

    The carbon atom lies at the center of a square, with the four hydrogen atoms at the corners. All atoms are coplanar. The H−C−H\ce{H-C-H} bond angles are 90°90° between adjacent hydrogens and 180°180° between opposite hydrogens.

Now compare the electron-pair repulsions:

GeometryBond anglesElectron-pair separation
TetrahedralAll 109.5°109.5°Maximum for 4 pairs in 3D
Square planar90°90° and 180°180°Four pairs forced into a plane

In the square planar arrangement, the four C−H\ce{C-H} bonding pairs are compressed into a single plane. Adjacent bonding pairs are separated by only 90°90°, which is significantly smaller than the tetrahedral angle of 109.5°109.5°. This means the electron clouds are much closer together, leading to much stronger repulsion.

Watch out

A common mistake is to think "square planar looks symmetric, so it should be stable." Symmetry alone doesn't minimize energy—three-dimensional separation of electron pairs does. Square planar is symmetric but energetically unfavorable for four equivalent bonds.

  1. Energy consideration …

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