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Worked Examples · Example 7.17

Q.Write the balanced chemical equation for the reaction of Cl2 with hot and concentrated NaOH. Is this reaction a disproportionation reaction? Justify.

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Step 1 — Write the balanced equation.

3Cl2+6NaOH→hot, conc.5NaCl+NaClO3+3H2O3Cl_2 + 6NaOH \xrightarrow{\text{hot, conc.}} 5NaCl + NaClO_3 + 3H_2O

Step 2 — Track oxidation states of Cl.

In Cl2Cl_2, chlorine is in the 0 oxidation state. In the products:

Cl  (0)→Cl−  (−1)  in NaCl(reduction)Cl \; (0) \rightarrow Cl^- \; (-1) \; \text{in } NaCl \quad (\text{reduction})

Cl  (0)→Cl  in ClO3−  (+5)  in NaClO3(oxidation)Cl \; (0) \rightarrow Cl \; \text{in } ClO_3^- \; (+5) \; \text{in } NaClO_3 \quad (\text{oxidation})

Step 3 — Conclusion.

Since the same element (chlorine, starting from the same oxidation state 0) is simultaneously oxidised and reduced in a single reaction, this fits the exact definition of a disproportionation reaction. …

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