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Use your brain power · Q6

Q.In the above special reaction for ICl, identify the oxidant and reductant. Denote oxidation states of the species.
[!NOTE]
The "special reaction" referred to is the ICl preparation printed just above this box in the interhalogen methods-of-preparation table (section 7.12.2): I2_2 + KClO3_3 →Δ\xrightarrow{\Delta} ICl + KIO3_3.

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Step 1. Assign oxidation states to every species. I2_2: I = 0 (free element). KClO3_3: K = +1, O = -2, so Cl = +5. ICl: the more electronegative Cl = -1, so I = +1. KIO3_3: K = +1, O = -2, so I = +5.

Step 2. Electron bookkeeping. Chlorine gains 6 electrons (+5 to -1). The two iodine atoms of I2_2 are BOTH oxidised, but unequally: one goes 0 to +1 (in ICl, losing 1 electron), the other 0 to +5 (in KIO3_3, losing 5 electrons) -- 1 + 5 = 6 electrons lost, exactly balancing chlorine's gain. …

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