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Question : 47 of 150
Marks:
+1,
-0
Solution:
O2+ ion - Total number of electrons
(16 – 1) = 15.
E.C. :
σ1s2 σ*
1s2 α
2s2 α*
2s2 α
2pz2 π2px2 =
π2py2π*2p)‌x1 =
Ï€*2py Bond order =
=
=
= 2
O2− (Super oxide ion): Total number of electrons (16 +1) =17 .
E.C. :
σ
1s2 σ*
1s2σ2s2 σ*
2s2α2pz2 π2px2 =
π2py2 π*
2px2 =
Ï€*2py1 Bond order =
=
10−7 =
= 1
O22+ ion: Total number of electrons
= (16 – 2) = 14
E.C. :
σ
1s2 σ*
1s2σ2s2 σ*
2s2 π
2px2 =
π2py2σ2pz2 Bond order =
=
=
= 3
So bond order:
O2− <
O2+ <
O22+
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