How do we represent the oxidation of ethanol to acetic acid, accompanied by the reduction of potassium permanganate to manganese(IV) oxide?

1 Answer
anor277
Aug 8, 2017

Well let us try it..........

4MnO_4^(-) + 3H_3C-CH_2OH rarr4MnO4+3H3CCH2OH
3H_3C-CO_2^(-) +4MnO_2(s) +4H_2O(l) +HO^(-)3H3CCO2+4MnO2(s)+4H2O(l)+HO

Explanation:

Permanganate is reduced to MnO_2(s)MnO2(s)

MnO_4^(-) +4H^(+) + 3e^(-) rarr MnO_2(s) +2H_2O(l)MnO4+4H++3eMnO2(s)+2H2O(l) (i)(i)

Ethanol is oxidized to ""^(-)O(O=)C-CH_3O(O=)CCH3

H_3C-CH_2OH +H_2O(l) rarr H_3C-CO_2H + 4H^(+) + 4e^(-)H3CCH2OH+H2O(l)H3CCO2H+4H++4e (ii)(ii)

We add the individual redox reactions in such a way as to eliminate the electrons, i.e. 4xx(i)+3xx(ii)4×(i)+3×(ii)

4MnO_4^(-) +4H^(+) + 3H_3C-CH_2OH rarr 3H_3C-CO_2H +4MnO_2(s) +5H_2O(l) 4MnO4+4H++3H3CCH2OH3H3CCO2H+4MnO2(s)+5H2O(l)

But basic conditions were specified, and thus we add 4xxHO^-4×HO to each side.......

4MnO_4^(-) +underbrace(4H^(+) +4HO^(-))_(4H_2O) + 3H_3C-CH_2OH rarr
3H_3C-CO_2H +4MnO_2(s) +5H_2O(l) +4HO^(-)

To give finally.......

4MnO_4^(-) + 3H_3C-CH_2OH rarr
3H_3C-CO_2^(-) +4MnO_2(s) +4H_2O(l) +HO^(-)

The which I think is balanced with respect to mass and charge; as indeed it must be if we purport to represent chemical reality. What would see in the reaction? The intense, deep purple colour of permanganate ion would dissipate to give a brown precipitate of MnO_2.

Note that I am still not happy with this solution. Manganate ion, i.e. Mn(VI+), MnO_4^(2-), a green salt is MORE LIKELY in basic solution........

MnO_4^(2-) +2H_2O + 2e^(-) rarrMnO_2(s) +4HO^(-)

I will let you do the adding of this to the oxidation equation.......

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