QUESTION IMAGE
Question
4.
h-cl:
polar or nonpolar?
forces present:
5.
:cl:
:cl-c-cl:
:cl:
polar or nonpolar?
forces present:
Problem 4 (HCl)
Step1: Analyze Bond Polarity
HCl has a covalent bond between H and Cl. Cl is more electronegative than H, so the bond is polar (electrons are pulled more toward Cl).
Step2: Molecular Geometry and Dipole
The molecule is linear (two atoms). The polar bond creates a net dipole moment (since there's no symmetry to cancel it). So the molecule is polar.
Step3: Forces Present
Forces: London dispersion forces (present in all molecules) and dipole - dipole forces (due to the polar bond, as the molecule has a permanent dipole). Also, since it's a covalent molecule, no ionic bonds.
Step1: Bond Polarity
C - Cl bonds are polar (Cl is more electronegative than C).
Step2: Molecular Geometry and Dipole Cancellation
The molecule has a tetrahedral geometry. The four C - Cl bonds are symmetrically arranged around the central C atom. The dipole moments of the individual C - Cl bonds cancel each other out (vector sum of dipoles is zero) due to the symmetry. So the molecule is nonpolar.
Step3: Forces Present
Forces: London dispersion forces (present in all molecules). Since the molecule is nonpolar (net dipole moment zero), there are no dipole - dipole forces. Also, no ionic bonds.
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Polar; Forces Present: London dispersion forces, dipole - dipole forces