An aqueous solution containing 0.5 g KIO...

An aqueous solution containing 0.5 g `KIO_3` (formula weight `=214.0`) was treated with an excess of KI solution. The solution was acidified with HCl. The liberated `I_2` consumed 45 " mL of " thiosulphate solution to decolourise the blue starch-iodine complex. Calculate the molarity of the sodium thiosulphate solution. Also give a balanced chemical equation for the action of `KI` on `KIO_3`.

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Moles of `KlO_(3) = (0.1)/(214) = 0.00047`
` :. ` Moles of `l_(2)` lliberated from `KlO_(3) = (0.00047)/2 = 0.000235`
Moles of Kl reacting ` = 0.00047 xx 5 = 0.00235 (. :. " n-factor for " KlO_(3) " and " Kl " are " 5 ad 1 "respectively " )`
Moles of `l_(2)` produced from `Kl = (0.00235)/2 = 0.001175`
Total moles of `l_(2)` produced and reacted `= 0.000235 + 0.001175 = 0.00141` equivalents of `l_(2)` reacted = `0.00141 xx 2 = 0.00282 `= equivalents of thiosulphate Solution :
Molarity = `(0.00282 xx 1000)/45 = 0.063` M (For thiosulphate n-factor = 1)

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