QUESTION IMAGE
Question
determine whether each molecule is polar or nonpolar. drag the appropriate items to their respective bins. nonpolar polar
Brief Explanations
- \(SF_{6}\): It has an octahedral molecular geometry. The symmetric distribution of \(S - F\) bonds (all \(F\) atoms are equivalent in this symmetric structure) leads to the cancellation of bond dipoles. So, it is non - polar.
- \(CF_{2}Cl_{2}\): It has a tetrahedral electron - pair geometry. But \(C - F\) and \(C - Cl\) bonds have different electronegativity differences. The bond dipoles do not cancel out (since \(F\) and \(Cl\) are not the same atoms), so it is polar.
- \(SiCl_{4}\): It has a tetrahedral molecular geometry. The four \(Si - Cl\) bonds are symmetrically arranged. The bond dipoles cancel each other out, making it non - polar.
- \(PCl_{3}\): It has a trigonal pyramidal molecular geometry. The \(P - Cl\) bond dipoles do not cancel (due to the lone pair on \(P\) which distorts the symmetry), so it is polar.
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- Nonpolar: \(SF_{6}\), \(SiCl_{4}\)
- Polar: \(CF_{2}Cl_{2}\), \(PCl_{3}\)