n which reactions is the non-metal behaving as an oxidising agent? I 2KI(aq) + Br2(aq) →→ 2KBr(aq) + I2(aq) II CO2(g) + C(s) →→ 2CO(g) III 3Mg(s) + N2(g) →→ Mg3N2(s) IV PbO(s) + H2(g) →→ Pb(s) + H2O(g)AI and III onlyBI and IV onlyCII and III onlyDII and IV only
Question
n which reactions is the non-metal behaving as an oxidising agent? I 2KI(aq) + Br2(aq) →→ 2KBr(aq) + I2(aq) II CO2(g) + C(s) →→ 2CO(g) III 3Mg(s) + N2(g) →→ Mg3N2(s) IV PbO(s) + H2(g) →→ Pb(s) + H2O(g)AI and III onlyBI and IV onlyCII and III onlyDII and IV only
Solution
The correct answer is A. I and III only.
Explanation:
An oxidising agent is a substance that gains electrons in a chemical reaction, causing another substance to be oxidised (lose electrons).
I. 2KI(aq) + Br2(aq) → 2KBr(aq) + I2(aq): In this reaction, Br2 is the oxidising agent. It gains electrons from I- ions to form Br- ions, while the I- ions are oxidised to I2.
II. CO2(g) + C(s) → 2CO(g): In this reaction, CO2 is the oxidising agent. It gains electrons from C to form CO, while the C is oxidised to CO.
III. 3Mg(s) + N2(g) → Mg3N2(s): In this reaction, N2 is the oxidising agent. It gains electrons from Mg to form N3- ions, while the Mg is oxidised to Mg2+ ions.
IV. PbO(s) + H2(g) → Pb(s) + H2O(g): In this reaction, PbO is the reducing agent. It loses electrons to H2 to form Pb and H2O, while the H2 is reduced to H2O.
Therefore, the non-metal is behaving as an oxidising agent in reactions I and III.
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