QUESTION IMAGE
Question
- which compound(s) would have dipole-dipole forces of attraction between molecules? select all that apply. cl₂ pcl₃ ccl₄ scl₂
Step1: Analyze \( \text{Cl}_2 \)
\( \text{Cl}_2 \) is a diatomic molecule with identical atoms, so it is non - polar. Non - polar molecules only have London dispersion forces, not dipole - dipole forces.
Step2: Analyze \( \text{PCl}_3 \)
The central atom \( \text{P} \) in \( \text{PCl}_3 \) has a lone pair of electrons. The molecular geometry of \( \text{PCl}_3 \) is trigonal pyramidal. Due to the difference in electronegativity between \( \text{P} \) and \( \text{Cl} \), and the asymmetrical shape, the molecule has a net dipole moment. So, \( \text{PCl}_3 \) is a polar molecule and will have dipole - dipole forces.
Step3: Analyze \( \text{CCl}_4 \)
The molecular geometry of \( \text{CCl}_4 \) is tetrahedral. The four \( \text{C - Cl} \) bonds are arranged symmetrically around the central \( \text{C} \) atom. The dipole moments of the individual \( \text{C - Cl} \) bonds cancel each other out, making \( \text{CCl}_4 \) a non - polar molecule. It only has London dispersion forces.
Step4: Analyze \( \text{SCl}_2 \)
The central atom \( \text{S} \) in \( \text{SCl}_2 \) has two lone pairs of electrons. The molecular geometry is bent (angular). The difference in electronegativity between \( \text{S} \) and \( \text{Cl} \) and the asymmetrical shape result in a net dipole moment. So, \( \text{SCl}_2 \) is a polar molecule and will have dipole - dipole forces.
Snap & solve any problem in the app
Get step-by-step solutions on Sovi AI
Photo-based solutions with guided steps
Explore more problems and detailed explanations
\( \text{PCl}_3 \), \( \text{SCl}_2 \) (The checkboxes corresponding to \( \text{PCl}_3 \) and \( \text{SCl}_2 \) should be selected)