Concept:Dipole moment depends on molecular geometry and bond polarity; symmetric molecules have zero dipole moment.
Explanation:•
BF3 is trigonal planar and symmetric, so its net dipole moment is zero.
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NH4+ is tetrahedral with all bonds identical and symmetric; despite the positive charge, the molecule has zero dipole moment.
•
NF3 is pyramidal with a lone pair on nitrogen. The bond dipoles point toward fluorine (more electronegative), while the lone pair contributes a dipole in the opposite direction. This partial cancellation results in a smaller net dipole compared to
NH3.
•
NH3 is also pyramidal with a lone pair. Here, the bond dipoles point toward nitrogen, and the lone pair dipole adds to the net moment, giving a larger dipole than
NF3.
Thus, the order is:
BF3=NH4+<NF3<NH3.
Answer:Option A.