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Q.What is meant by the term Bond Order? Calculate the bond order of N2, O2, O2+ and O2-. OR What is meant by hybridization of atomic orbitals? Describe the shapes of sp, sp2 and sp3 hybrid orbitals with examples.

Haryana BsehBoard of School Education Haryana (Senior Secondary Part-I / Class 11) 2021Subjective· 5mImportance★★★★★
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Using Molecular Orbital Theory, bond order = ½(bonding electrons − antibonding electrons): N2N_2 has bond order 3, O2O_2 has 2, O2+O_2^+ has 2.5, and O2−O_2^- has 1.5.

Definition of Bond Order: Bond order (B.O.) is defined as half the difference between the number of electrons in bonding molecular orbitals (NbN_b) and the number in antibonding molecular orbitals (NaN_a):

Bond order=Nb−Na2\text{Bond order} = \dfrac{N_b - N_a}{2}

A higher bond order means a stronger, shorter bond.

N2N_2 (14 electrons): MO filling order for N2N_2 (up to N): σ1s2 σ∗1s2 σ2s2 σ∗2s2 (π2px2=π2py2) σ2pz2\sigma1s^2\ \sigma^{*}1s^2\ \sigma2s^2\ \sigma^{*}2s^2\ (\pi2p_x^2=\pi2p_y^2)\ \sigma2p_z^2.

Bonding electrons = 2+2+2+2+2 = 10; Antibonding = 2+2 = 4.

B.O.=10−42=3B.O. = \dfrac{10-4}{2} = 3

(Consistent with N2N_2's well-known triple bond, N≡N.)

O2O_2 (16 electrons): MO order for O onward: σ1s2 σ∗1s2 σ2s2 σ∗2s2 σ2pz2 (π2px2=π2py2) (π∗2px1=π∗2py1)\sigma1s^2\ \sigma^{*}1s^2\ \sigma2s^2\ \sigma^{*}2s^2\ \sigma2p_z^2\ (\pi2p_x^2=\pi2p_y^2)\ (\pi^{*}2p_x^1=\pi^{*}2p_y^1).

Bonding = 2+2+2+2+2 = 10; Antibonding = 2+2+1+1 = 6.

B.O.=10−62=2B.O. = \dfrac{10-6}{2} = 2

(Matches O2O_2's double bond and correctly predicts 2 unpaired electrons → paramagnetic, a famous MOT success.)

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