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Q.Which one has zero value of dipole moment?

(a) H2O
(b) NH3
(c) CCl4
(d) CH4
Haryana BsehBoard of School Education Haryana (Senior Secondary Part-I / Class 11) 2018MCQ· 1mImportance★★★★★
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Net dipole moment is a vector sum of bond dipoles. CCl4's tetrahedral symmetry makes its four polar C-Cl bond dipoles cancel exactly, giving zero net dipole moment.

Dipole moment depends on both bond polarity AND molecular geometry/symmetry — a molecule can have polar bonds yet be non-polar overall if the bond dipoles are arranged symmetrically and cancel.

Going through the options:

  • H2O: bent (angular) shape, ~104.5° bond angle. The two O-H bond dipoles do NOT cancel because the molecule is not linear/symmetric — net μ ≈ 1.85 D.
  • NH3: trigonal pyramidal shape (lone pair on N breaks symmetry). The three N-H bond dipoles plus the lone pair's contribution do not cancel — net μ ≈ 1.47 D.
  • CCl4: perfect tetrahedral geometry (all four C-Cl bonds identical, 109.5° angles, no lone pair on C). Each C-Cl bond is individually polar (Cl more electronegative than C), but the four bond dipole vectors, pointing symmetrically towards each corner of a tetrahedron, sum to exactly zero. Net μ = 0. This is the textbook example used to teach that bond polarity ≠ molecular polarity. …

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