QUESTION IMAGE
Question
select the diamagnetic species from the following: (a) hnc, (b) o₂²⁻, (c) oh, (d) hco, and (e) h₂. their lewis structures are described below. check all that apply. (a) h—n⁺≡c⁻ (b) :o⁻—:o⁻ (c) :o⁻—h (d) h—c·=o· (e) h—h
Step1: Recall the definition of diamagnetic species
Diamagnetic species have all electrons paired.
Step2: Analyze each species
- (a) HNC:
The Lewis structure is \(H - \overset{+}{N}\equiv\overset{-}{C}\). All electrons are paired.
- (b) \(O_{2}^{2 - }\):
The Lewis structure is \(\overset{-}{\underset{\cdot\cdot}{O}}-\overset{\cdot\cdot}{O}\overset{-}{\underset{\cdot\cdot}{}}\). All electrons are paired.
- (c) \(OH\):
The Lewis structure is \(\overset{\cdot\cdot}{O}-H\). There is an unpaired electron on oxygen.
- (d) \(HCO\):
The Lewis structure is \(H-\overset{\cdot}{C}=\overset{\cdot\cdot}{O}\). There is an unpaired electron on carbon.
- (e) \(H_{2}\):
The Lewis structure is \(H - H\). All electrons are paired.
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(a) HNC, (b) \(O_{2}^{2 - }\), (e) \(H_{2}\)