QUESTION IMAGE
Question
which one of the following substances will have both dispersion forces and dipole - dipole forces?
a) bf₃
b) co₂
c) br₂
d) hcl
Brief Explanations
- Dispersion forces: These are present in all molecules as they result from temporary fluctuations in electron distribution. So, all the given substances (\(BF_3\), \(CO_2\), \(Br_2\), \(HCl\)) have dispersion forces.
- Dipole - dipole forces: These occur in polar molecules. A polar molecule has a permanent dipole moment.
- For \(BF_3\): The central \(B\) atom has \(sp^2\) hybridization and a trigonal planar geometry. The bond dipoles cancel out (\(\mu = 0\)), so it is non - polar.
- For \(CO_2\): The central \(C\) atom has \(sp\) hybridization and a linear geometry. The bond dipoles (\(C = O\) bonds are polar) cancel out (\(\mu=0\)), so it is non - polar.
- For \(Br_2\): It is a non - polar molecule as it consists of two identical \(Br\) atoms (\(\mu = 0\)).
- For \(HCl\): The \(H - Cl\) bond is polar (\(Cl\) is more electronegative than \(H\)). The molecule has a permanent dipole moment (\(\mu
eq0\)), so it is polar and has dipole - dipole forces in addition to dispersion forces.
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d) \(HCl\)