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Problems · Problem 7.6

Q.Suggest a scheme of classification of the following redox reactions

(a) N2(g) + O2(g) → 2NO(g)
(b) 2Pb(NO3)2(s) → 2PbO(s) + 4NO2(g) + O2(g)
(c) NaH(s) + H2O(l) → NaOH(aq) + H2(g)
(d) 2NO2(g) + 2OH–(aq) → NO2–(aq) + NO3–(aq) + H2O(l)
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Redox reactions are classified by the mechanism of electron transfer. (a) is combination, (b) is decomposition, (c) is displacement (specifically a hydride-water redox), and (d) is disproportionation — where the same element (N) is both oxidised and reduced.

The first step in any redox classification is to spot which elements change oxidation state. Without that, you’re guessing. So let’s assign oxidation numbers to every atom in each reaction, then see the pattern of change.


1. Reaction (a): N2(g)+O2(g)→2NO(g)N_2(g) + O_2(g) \rightarrow 2NO(g)

  • In N2N_2, each N has oxidation number 00. In O2O_2, each O has 00.
  • In NONO, O is −2-2 (usual), so N must be +2+2.

N goes from 00 to +2+2 — it is oxidised (loses electrons).

O goes from 00 to −2-2 — it is reduced (gains electrons).

Two elements combine into a single product. This is a combination reaction (also called synthesis). Both oxidation and reduction happen in the same step as the elements join.

Tip

Combination reactions are the simplest redox type: two (or more) substances form one product, with electron transfer occurring during bond formation.

Classification: Combination redox.


2. Reaction (b): 2Pb(NO3)2(s)→2PbO(s)+4NO2(g)+O2(g)2Pb(NO_3)_2(s) \rightarrow 2PbO(s) + 4NO_2(g) + O_2(g)

Assign oxidation numbers carefully:

  • In Pb(NO3)2Pb(NO_3)_2: Pb is +2+2 (common for lead). Each NO3−NO_3^- has N at +5+5 (since O is −2-2, total −6-6, so N must be +5+5 to give −1-1 charge on the ion).
  • In PbOPbO: Pb stays +2+2, O is −2-2 — no change for Pb.
  • In NO2NO_2: O is −2-2 each (total −4-4), so N is +4+4.
  • In O2O_2: O is 00.

So N changes from +5+5 (in nitrate) to +4+4 (in NO2NO_2) — that’s reduction (gain of electrons).

O changes from −2-2 (in nitrate) to 00 (in O2O_2) — that’s oxidation (loss of electrons).

One compound breaks down into three simpler substances, with simultaneous oxidation and reduction of different atoms within it. This is a decomposition reaction.

Watch out

A common mistake is to think all decomposition reactions are redox. They are only redox if oxidation states change. For example, CaCO3→CaO+CO2CaCO_3 \rightarrow CaO + CO_2 is not redox — no change in oxidation numbers. Always check.

Classification: Decomposition redox.


3. Reaction (c): NaH(s)+H2O(l)→NaOH(aq)+H2(g)NaH(s) + H_2O(l) \rightarrow NaOH(aq) + H_2(g)

Oxidation numbers:

  • In NaHNaH: Na is +1+1, so H must be −1-1 (hydride ion).
  • In H2OH_2O: H is +1+1, O is −2-2.
  • In NaOHNaOH: Na +1+1, O −2-2, H +1+1.
  • In H2H_2: H is 00.

Which atoms change?

The H in NaHNaH goes from −1-1 to 00 (in H2H_2) — oxidation.

The H in H2OH_2O goes from +1+1 to 00 (in H2H_2) — reduction. …

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