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Question

Which of the following liberates O2 upon hydrolysis?


A

Pb3O4

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B

KO2

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C

Na2O2

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D

Li2O2

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Solution

The correct option is B

KO2


The explanation for the correct option:

(b) KO2

  1. It is superoxide.
  2. Superoxide is diatomic oxygen, an inorganic radical anion, oxygen radical and a member of reactive oxygen species
  3. The oxidation state of oxygen is known to be -12.
  4. Superoxide liberates oxygen when it reacts with water.

2KO2(s)+2H2O(l)2KOH(aq)+H2O2(aq)+O2(g)PotassiumPotassiumHydrogenOxygensuperoxidehyroxideperoxide

The explanation for the incorrect option:

(a) Pb3O4

  1. It is insoluble in water, so no reaction happens

Pb3O4(s)+H2O(l)NoreactionLeadtetroxide

(c) Na2O2

  1. It is a peroxide
  2. The oxidation state of oxygen in peroxide is known to be -1
  3. It liberates hydrogen peroxide (H2O2) when reacts with water.

Na2O2(s)+2H2O(l)2NaOH(aq)+H2O2(aq)SodiumSodiumHydrogenperoxidehydroxideperoxide

(d) Li2O2

  1. It is also a peroxide and liberates hydrogen peroxide (H2O2) when reacts with water.

Li2O2(s)+2H2O(l)2LiOH(aq)+H2O2(aq)LithiumLithiumHydrogenperoxidehydroxideperoxide

Therefore, option (b) is correct, KO2 will liberate O2 upon hydrolysis.


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