Question #cfd9b

1 Answer
anor277
Aug 23, 2017

You wants the so-called "comproportionation" of "iodide" and "iodate" ions to "elemental iodine"?

Explanation:

"Iodide anion I(-I)" is OXIDIZED to elemental iodine.....

I^(-) rarr 1/2I_2 + e^(-) (i)

And "Iodate anion I(V+)" is REDUCED to elemental iodine.....

IO_3^(-) +6H^(+) + 6e^(-) rarr I^(-) + 3H_2O (ii)

We adds (i) and (ii) so as to eliminate the electrons.......i.e. 6xx(i) +(ii):

IO_3^(-) +cancel(6)5I^(-) + 6H^(+) + cancel(6e^(-)) rarr cancel(I^(-)) + 3I_2 + 3H_2O+cancel(6e^-)

To give finally........

IO_3^(-) +5I^(-) + 6H^(+) rarr 3I_2 + 3H_2O

Mass and charge are balanced as is absolutely required. Please note that all I have done is to balance mass and charge according to the standard rules of oxidation; and you yourself can become very adept at this with practice. If there is an issue you want clarified, raise it, and someone will address your question.

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