Advertisements
Advertisements
प्रश्न
Arrange the following bonds in order of increasing ionic character giving reason.
\[\ce{N - H, F - H, C - H}\] and \[\ce{O - H}\]
उत्तर
The ionic character in a molecular species is decided by the electronegativity difference between the two bonded atoms. Greater the electronegativity difference between two bonded pairs, the greater will be the ionic character.
The electronegativity difference of the given species is:
\[\ce{C - F = (2.5 - 2.1) = 0.4}\]
\[\ce{N - H = (3.0 - 2.1) = 0.9}\]
\[\ce{O - H = (3.5 - 2.1) = 1.4}\]
\[\ce{F - H = (4.0 - 2.1) = 1.9 }\]
To the above given difference in the electronegativities, the order of increasing ionic character is:
\[\ce{C - H < N - H < O - H < F - H}\]
APPEARS IN
संबंधित प्रश्न
Although both CO2 and H2O are triatomic molecules, the shape of H2O molecule is bent while that of CO2 is linear. Explain this on the basis of dipole moment.
Write the significance/applications of dipole moment.
How does electronegativity differ from electron gain enthalpy?
Explain with the help of suitable example polar covalent bond.
Which out of NH3 and NF3 has higher dipole moment and why?
If AB4 molecule is a polar molecule, a possible geometry of AB4 is ______.
Dipole moment of HX is 2.59 × 10−30 coulomb-metre. Bond length of HX is 1.39 Å. The ionic character of molecule is ______%.
The dipole moments of the given molecules are such that ______.
The observed dipole-moment of HCl molecule is 1.03 D. If \[\ce{H - Cl}\] bond distance is 1.275 Å and electronic charge is 4.8 × 10-10 esu. What is the percent polarity of HCl?
The dipole moments of CCl4, CHCl3 and CH4 are in the order: