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NCERT Exemplar · Q39

Q.Explain why is O=C=OO=C=O nonpolar while R-O-RR\text{-}O\text{-}R is polar.

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The key is molecular geometry: CO2CO_2 is linear and symmetric, so its bond dipoles cancel out, making it nonpolar. In contrast, R-O-RR\text{-}O\text{-}R (an ether) has a bent shape around oxygen, so the bond dipoles do not cancel, giving it a net dipole moment.

Why This Happens: The Concept

Polarity of a molecule depends on two things: the polarity of individual bonds (due to electronegativity differences) and the shape of the molecule. Even if a molecule has polar bonds, if the geometry arranges those bond dipoles so they point in opposite directions and cancel perfectly, the molecule as a whole is nonpolar. If the shape prevents cancellation, the molecule is polar.

Let's apply this to the two molecules.

Step-by-Step Reasoning

  1. Electronegativity and Bond Polarity

    Oxygen is more electronegative than both carbon and hydrogen. In C=OC=O bonds, oxygen pulls electron density toward itself, creating a bond dipole with the negative end on oxygen. In O−HO-H or O−CO-C bonds (as in ethers), the same happens — oxygen is the negative end.

  2. Molecular Geometry of CO2CO_2

    Carbon dioxide has the structure O=C=OO=C=O. Carbon is spsp-hybridized, giving a linear geometry with a bond angle of 180∘180^\circ. The two C=OC=O bonds are identical in polarity, but they point in exactly opposite directions.

    Tip

    Think of two equal-strength tug-of-war teams pulling in opposite directions — the net force is zero. Similarly, the two bond dipoles in CO2CO_2 are equal in magnitude and opposite in direction, so they cancel.

    Mathematically, the vector sum of the two bond dipoles is zero:

μ⃗net=μ⃗C=O+μ⃗O=C=0\vec{\mu}_{\text{net}} = \vec{\mu}_{C=O} + \vec{\mu}_{O=C} = 0

Hence, CO2CO_2 has no net dipole moment and is nonpolar.

  1. Molecular Geometry of R-O-RR\text{-}O\text{-}R (Ethers)

    In an ether, oxygen is sp3sp^3-hybridized with two lone pairs. The C−O−CC-O-C bond angle is roughly 110∘110^\circ (slightly less than the tetrahedral 109.5∘109.5^\circ due to lone pair repulsion). This gives a bent shape around oxygen.

    The two C−OC-O bond dipoles both point from carbon toward oxygen. Because the molecule is bent, these dipoles do not point in opposite directions — they are at an angle of about 110∘110^\circ to each other.

    Watch out

    A common mistake is to think that because the two alkyl groups (R) are the same, the molecule must be nonpolar. But symmetry alone isn't enough — the shape must allow dipoles to cancel. In a bent molecule, they don't.

    The net dipole moment is the vector sum of the two bond dipoles. Since they are not opposite, the sum is nonzero:

    μnet=2μC−Ocos⁡(110∘2)≠0\mu_{\text{net}} = 2 \mu_{C-O} \cos\left(\frac{110^\circ}{2}\right) \neq 0 …

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