QUESTION IMAGE
Question
what kind of intermolecular forces act between a chlorine monofluoride molecule and a nitrogen trichloride molecule? note: if there is more than one type of intermolecular force that acts, be sure to list them all, with a comma between the name of each force.
Brief Explanations
- First, determine the polarity of each molecule:
- Chlorine monofluoride (ClF): Cl and F have different electronegativities, so ClF is a polar molecule (dipole - dipole forces exist between polar molecules, and also London dispersion forces which exist between all molecules).
- Nitrogen trichloride (NCl₃): The N - Cl bonds are polar, and the molecular geometry is trigonal pyramidal, so NCl₃ is a polar molecule.
- Now, identify the intermolecular forces:
- London dispersion forces: These are present between all molecules, regardless of polarity. They arise from temporary fluctuations in electron distribution, creating temporary dipoles.
- Dipole - dipole forces: Since both ClF and NCl₃ are polar molecules, the positive end of one dipole (e.g., the Cl end of ClF or the Cl end of NCl₃) is attracted to the negative end of another dipole (e.g., the F end of ClF or the N end of NCl₃, considering the dipole moments).
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London dispersion forces, dipole - dipole forces