Chemistry · Ch 5 — States of Matter
Dipole - Dipole Forces
Dipole - Dipole Forces
Attraction between permanent dipoles
When molecules already carry a permanent dipole — like HCl, where chlorine pulls electron density towards itself — their oppositely-charged ends attract neighbouring molecules. The ends of such a dipole carry only partial charges, written with the Greek letter delta (); these are always smaller in magnitude than a full electronic charge ().
Figure 5.2(a) shows the lopsided electron-cloud distribution inside a single HCl molecule — more density piled up on the chlorine end (), leaving hydrogen electron-poor (). Figure 5.2(b) then shows two such HCl molecules lining up head-to-tail so that the end of one sits near the end of the other — this alignment is the dipole-dipole interaction.
How strong, and how does it fall off?
Because only partial charges are involved, dipole-dipole attraction is:
- stronger than dispersion (London) forces, but
- weaker than the full ion-ion interaction between actual charged ions.
The attraction weakens as the molecules move apart, and — interestingly — the exact distance-dependence depends on whether the molecules can rotate freely:
- for stationary polar molecules (as in a solid), interaction energy
- for freely rotating polar molecules, interaction energy …
What this figure shows. Two-panel figure. Panel (a): a single oval molecule shaded blue, darker/denser toward the right end; left end labelled 'H' with a 'δ+' above it, right end labelled 'Cl' with a 'δ−' above it; a leader line labelled 'More charge density towards chlorine' points to the right (darker) end. Marked '(a)' below. Panel (b): two identical HCl ovals side by side, each shaded darker toward its right (Cl) end, each labelled 'H' (left, δ+) and 'Cl' (right, δ−) with delta-plus/delta-minus signs above the ends. Marked '(b)' below, illustrating the two permanent dipoles aligned head-to-tail (attractive dipole-dipole interaction) between two HCl molecules. …