Write the significance/applications of dipole moment.

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(N/A) $1$. Determining the polarity of a bond: As $\mu = q \times d$,a greater magnitude of dipole moment indicates higher bond polarity. For a polar bond in an $A-B$ type molecule,the order is $HF > HCl > HBr > HI$. If $\mu = 0$,the molecule is non-polar (e.g.,$O_2, N_2, F_2, Cl_2, Br_2, I_2, H_2$).
$2$. Determining the shape (symmetry) of a molecule: Molecules like $BeF_2, CO_2, BeCl_2$ have $\mu = 0$ and are linear. Molecules like $H_2O, SO_2$ have $\mu \neq 0$ and are angular. Similarly,$BF_3, CH_4, CCl_4$ are non-polar,while $NF_3, NH_3, CH_3Cl$ are polar.
$3$. Calculation of ionic or covalent character: Ionic character is proportional to the difference in electronegativity. In $HI, HBr, HCl, HF$,the ionic character increases.
$4$. Distinguishing between cis and trans isomers: For cis isomers,$\mu \neq 0$,whereas for trans isomers,$\mu = 0$.
$5$. Distinguishing between ortho,meta,and para isomers: For para isomers,$\mu = 0$,and the dipole moment of ortho isomers is generally greater than that of meta isomers.

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Similar Questions

Which of the following represents the correct decreasing order of dipole moment?

Match the compounds given in List-$I$ with their dipole moments given in List-$II$.
List-$I$List-$II$
$(1)$ ${\rm{HBr}}$$(A)$ $0.23$
$(2)$ ${{\rm{H}}_2}{\rm{S}}$$(B)$ $1.04$
$(3)$ ${\rm{N}}{{\rm{F}}_3}$$(C)$ $1.07$
$(4)$ ${\rm{CC}}{{\rm{l}}_4}$$(D)$ $0.79$
$(5)$ ${\rm{CHC}}{{\rm{l}}_3}$$(E)$ $0.00$
$(F)$ $0.95$

Which of the following bonds is the most polar?

The order of dipole moments of $H_2O (A)$,$CHCl_3 (B)$,and $NH_3 (C)$ is

Which has zero dipole moment?

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