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identify the species oxidized, the species reduced, the oxidizing agent…

Question

identify the species oxidized, the species reduced, the oxidizing agent and the reducing agent in the following electron transfer reaction.

3mn²⁺ + 2al → 3mn + 2al³⁺

as the reaction proceeds, electrons are transferred from to .

Explanation:

Step1: Determine oxidation states

  • For \(Al\) in \(Al\) (reactant), oxidation state is \(0\). In \(Al^{3 + }\) (product), it is \(+ 3\).
  • For \(Mn^{2+}\) (reactant), oxidation state is \(+2\). In \(Mn\) (product), it is \(0\).

Step2: Identify oxidized and reduced species

  • Species oxidized: The species that loses electrons (oxidation state increases). \(Al\) goes from \(0\) to \(+3\), so \(Al\) is oxidized.
  • Species reduced: The species that gains electrons (oxidation state decreases). \(Mn^{2+}\) goes from \(+2\) to \(0\), so \(Mn^{2+}\) is reduced.

Step3: Identify oxidizing and reducing agents

  • Oxidizing agent: The species that causes oxidation (gets reduced). \(Mn^{2+}\) is the oxidizing agent.
  • Reducing agent: The species that causes reduction (gets oxidized). \(Al\) is the reducing agent.

Step4: Determine electron transfer

  • Electrons are transferred from the species that is oxidized (\(Al\)) to the species that is reduced (\(Mn^{2+}\)).

Answer:

species oxidized: \(Al\)
species reduced: \(Mn^{2+}\)
oxidizing agent: \(Mn^{2+}\)
reducing agent: \(Al\)
Electrons are transferred from \(Al\) to \(Mn^{2+}\)