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Chemistry · Ch 9 — Hydrocarbons

Structure of Double Bond

9.3.1

Structure of Double Bond

The Carbon-Carbon Double Bond: A Sigma-Pi Picture

The carbon-carbon double bond is not simply two identical bonds stacked on top of each other. It is a hybrid structure built from two very different types of bonds: one strong sigma (σ\sigma) bond and one weaker pi (π\pi) bond. Understanding this difference is the key to understanding why alkenes react the way they do.

Each carbon in the double bond is sp2sp^2 hybridised. This means one ss orbital and two pp orbitals mix to form three equivalent sp2sp^2 hybrid orbitals, which lie in a plane at 120∘120^\circ angles. The remaining unhybridised pp orbital (the 2pz2p_z orbital) sticks out perpendicular to this plane.

The sigma bond forms first. It comes from the head-on overlap of one sp2sp^2 hybrid orbital from each carbon. This overlap is direct, along the internuclear axis, and is therefore strong. Its bond enthalpy is about 397 kJ mol−1397 \text{ kJ mol}^{-1}.

Figure 9.4Orbital picture of ethene depicting the σ bonds.
Fig. 9.4 — Orbital picture of ethene depicting the σ bonds.

Drawn by us to help you understand the concept clearly, and verified to make sure it's accurate. For exams, practice from your NCERT textbook's own diagram.

Fig. 9.4 is a schematic orbital diagram of ethene (C₂H₄) that shows only the σ-bond framework — the skeleton of the molecule formed by head-on orbital overlaps. The figure deliberately omits the π bond (which is shown separately in Fig. 9.5) so you can focus on the geometry and hybridisation of the sigma bonds.

Each carbon atom in ethene is sp2sp^2 hybridised. This means one 2s2s orbital mixes with two 2p2p orbitals to produce three equivalent sp2sp^2 hybrid orbitals that lie in a plane, pointing toward the vertices of an equilateral triangle — separated by 120∘120^\circ. The remaining unhybridised 2p2p orbital on each carbon sticks out perpendicular to this plane (it will form the π bond later).

In the figure, you see the three sp2sp^2 hybrid orbitals on each carbon. Two of them overlap head-on with the 1s1s orbitals of two hydrogen atoms, forming two C–H σ bonds. The third sp2sp^2 orbital on each carbon overlaps head-on with the corresponding sp2sp^2 orbital of the other carbon, forming the C–C σ bond. All six atoms — two carbons and four hydrogens — lie in the same plane. The bond angles are close to 120∘120^\circ, and the C–C σ bond length is about 154 pm154\ \text{pm} (the same as a typical single bond in ethane).

The key physical idea the figure teaches is that the σ bond is strong and localised along the internuclear axis. Because it is formed by direct, head-on overlap, it has high electron density between the nuclei and a bond enthalpy of about 397 kJ mol−1397\ \text{kJ mol}^{-1} for the C–C σ component. The planar geometry is a direct consequence of sp2sp^2 hybridisation: the three σ bonds around each carbon repel each other to maximise separation, giving the 120∘120^\circ angles.

Important

The σ-bond framework alone does not account for the full double bond. The C=C double bond is shorter (134 pm134\ \text{pm}) and stronger (total bond enthalpy 681 kJ mol−1681\ \text{kJ mol}^{-1}) than a single bond because of the additional π bond. The σ bond contributes roughly 397 kJ mol−1397\ \text{kJ mol}^{-1}; the π bond contributes about 284 kJ mol−1284\ \text{kJ mol}^{-1}.

The textbook develops the following central relationship from this figure:

Etotal(C=C)=Eσ+EπE_{\text{total}}(\text{C=C}) = E_\sigma + E_\pi

where Eσ≈397 kJ mol−1E_\sigma \approx 397\ \text{kJ mol}^{-1} (from head-on sp2sp^2–sp2sp^2 overlap) and Eπ≈284 kJ mol−1E_\pi \approx 284\ \text{kJ mol}^{-1} (from sideways 2p2p–2p2p overlap). The sum, 681 kJ mol−1681\ \text{kJ mol}^{-1}, is the bond enthalpy of the double bond.

The figure also reinforces that the π bond is weaker than the σ bond because sideways overlap is less effective than head-on overlap. This weakness is why alkenes are reactive toward electrophiles: the π electrons are loosely held and easily attacked. …

The pi bond is a different story. It forms from the lateral or sideways overlap of the two unhybridised 2p2p orbitals. These orbitals are parallel to each other, so their overlap occurs above and below the plane of the sigma bond, not directly between the nuclei. This sideways overlap is much less effective than head-on overlap, making the pi bond significantly weaker. Its bond enthalpy is about 284 kJ mol−1284 \text{ kJ mol}^{-1}.

Figure 9.5Orbital picture of ethene showing formation of the π bond.
Fig. 9.5 — Orbital picture of ethene showing formation of the π bond.

Drawn by us to help you understand the concept clearly, and verified to make sure it's accurate. For exams, practice from your NCERT textbook's own diagram.

The figure shows two carbon atoms, each with three sp2sp^2 hybrid orbitals lying in a plane at 120∘120^\circ angles. On each carbon, one unhybridised 2p2p orbital sticks out perpendicular to that plane — one lobe above and one below. The two 2p2p orbitals, one from each carbon, are parallel to each other and aligned so that their lobes overlap sideways, both above and below the plane of the molecule. This sideways overlap creates the π\pi bond.

The key physical idea is that a π\pi bond is not concentrated along the internuclear axis. Instead, its electron density is distributed in two regions — one above and one below the molecular plane — with a node (zero electron density) exactly in the plane, right along the line joining the two carbon nuclei. This is why the π\pi bond is weaker than a σ\sigma bond: sideways overlap is less effective than head-on overlap. The electrons in a π\pi bond are also more exposed and more mobile, which is why alkenes are attacked by reagents that seek electrons (electrophiles).

Important

The π\pi bond has a nodal plane that contains the σ\sigma bond and both carbon nuclei. Electron density is zero in that plane.

The textbook uses this figure to explain the bond enthalpy data for the double bond. The total bond enthalpy of the C=C double bond in ethene is 681 kJ mol−1681\ \text{kJ mol}^{-1}. This is the sum of the σ\sigma bond enthalpy (about 397 kJ mol−1397\ \text{kJ mol}^{-1}) and the π\pi bond enthalpy (about 284 kJ mol−1284\ \text{kJ mol}^{-1}). For comparison, a single C–C σ\sigma bond in ethane has a bond enthalpy of only 348 kJ mol−1348\ \text{kJ mol}^{-1}.

EC=C=Eσ+Eπ≈397 kJ mol−1+284 kJ mol−1=681 kJ mol−1E_{\text{C=C}} = E_\sigma + E_\pi \approx 397\ \text{kJ mol}^{-1} + 284\ \text{kJ mol}^{-1} = 681\ \text{kJ mol}^{-1}

The π\pi bond alone is weaker than a single σ\sigma bond, but the double bond as a whole is stronger than a single bond. The bond length of the double bond (134 pm134\ \text{pm}) is also shorter than that of a single bond (154 pm154\ \text{pm}), because the sideways overlap pulls the two carbons closer together. …

Note

The total bond enthalpy of the double bond is the sum of its sigma and pi components: 397+284=681 kJ mol−1397 + 284 = 681 \text{ kJ mol}^{-1}. This is greater than the single C–C sigma bond in ethane (348 kJ mol−1348 \text{ kJ mol}^{-1}), but it is not twice as strong. The pi bond adds only about 284 kJ mol−1284 \text{ kJ mol}^{-1} of extra stability, which is less than the strength of a full sigma bond.

Consequences of the Pi Bond

The presence of this weaker, more exposed pi bond has two immediate consequences.

1. Shorter Bond Length. The double bond is shorter than a single bond. The carbon-carbon double bond length is 134 pm134 \text{ pm}, while a typical C–C single bond (as in ethane) is 154 pm154 \text{ pm}. The extra electron density from the pi bond pulls the two carbon nuclei closer together.

2. A Source of Mobile Electrons. The pi electrons are not tightly held between the nuclei. They are delocalised above and below the plane of the molecule, making them relatively loosely held and mobile. This means the double bond is an electron-rich region.

Important

Because the pi bond is a source of loosely held mobile electrons, alkenes are easily attacked by reagents that are in search of electrons. Such reagents are called electrophilic reagents (electron-loving). This is the fundamental reason why alkenes undergo electrophilic addition reactions.

Instability and Reactivity …