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Study this chemical reaction:
[tex]\[ 2Fe + 3S \rightarrow Fe_2S_3 \][/tex]

Then, write balanced half-reactions describing the oxidation and reduction that happen in this reaction.

\begin{tabular}{|l|l|}
\hline
Oxidation: & [tex]$\square$[/tex] \\
Reduction: & [tex]$\square$[/tex] \\
\hline
\end{tabular}


Sagot :

Let's analyze the reaction:
[tex]\[ 2 Fe + 3 S \rightarrow Fe_2S_3 \][/tex]

### Determining Oxidation States

1. Iron (Fe):
- In the elemental form [tex]\( Fe \)[/tex], iron has an oxidation state of 0.
- In [tex]\( Fe_2S_3 \)[/tex], iron has a +3 oxidation state (each [tex]\( Fe \)[/tex] contributes +3).

2. Sulfur (S):
- In the elemental form [tex]\( S \)[/tex], sulfur has an oxidation state of 0.
- In [tex]\( Fe_2S_3 \)[/tex], sulfur has a -2 oxidation state (each [tex]\( S \)[/tex] contributes -2).

### Writing the Half-Reactions

#### Oxidation Half-Reaction

Oxidation involves the loss of electrons. Here, iron is losing electrons to go from an oxidation state of 0 to +3.

Thus, the balanced oxidation half-reaction is:
[tex]\[ 2 Fe \rightarrow 2 Fe^{3+} + 6 e^- \][/tex]

#### Reduction Half-Reaction

Reduction involves the gain of electrons. Here, sulfur is gaining electrons to go from an oxidation state of 0 to -2.

Thus, the balanced reduction half-reaction is:
[tex]\[ 3 S + 6 e^- \rightarrow 3 S^{2-} \][/tex]

### Summary

These balanced half-reactions describe the processes of oxidation and reduction in the given reaction:

\begin{tabular}{|l|l|}
\hline
oxidation: & [tex]\(2 Fe \rightarrow 2 Fe^{3+} + 6 e^-\)[/tex] \\
reduction: & [tex]\(3 S + 6 e^- \rightarrow 3 S^{2-}\)[/tex] \\
\hline
\end{tabular}
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