Number of electron transferred in each case when potassium permanganate acts as oxidizing agent give MnO2, Mn²+ Mn(OH) 3 and MnO4²-?

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Number of electron transferred in each case when potassium permanganate acts as oxidizing agent give MnO2, Mn²+ Mn(OH) 3 and MnO4²-?

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Answer 1 · 2017-09-16T03:42:51

Well you have to write the individual reduction half equations.....

Explanation:

Permanganate ion is reduced to a lower oxidation state manganese ion, and the deep red colour of permanganate dissipates to give a green colour in the case of manganate ion, a brown solid in the the case of the neutral oxide, or colourless in the case of $M n^{2 +}$ $Mn^(2+)$

$1 .$ $1.$ $M n (+ V I I) \to M n (+ I V) :$ $Mn(+VII)rarrMn(+IV):$

$underbrace(MnO_4^(-))_"deep red" +3e^(-)+4H^+ rarrMnO_2+2H_2O$

This normally occurs in basic conditions so we add $4xxHO^-$ to each side.....

$MnO_4^(-) +3e^(-) +2H_2Orarrunderbrace(MnO_2(s))_"brown black solid" +4HO^-$

$2.$ $Mn(+VII)rarrMn(+II):$

$MnO_4^(-) +5e^(-)+8H^+ rarr underbrace(Mn^(2+))_"almost colourless"+4H_2O$

$3.$ $Mn(+VII)rarrMn(+III):$

$MnO_4^(-) +4e^(-)+5H^+ rarr Mn(OH)_3+H_2O$

And again we add $5xxHO^-$ to each side because basic conditions are required.....

$MnO_4^(-) +4e^(-)+4H_2O rarr Mn(OH)_3(s)darr+5HO^-$

$4.$ $Mn(+VII)rarrMn(+VI):$

$underbrace(MnO_4^(-))_"purple" +e^(-)rarr underbrace(MnO_4^(2-))_"green"$

Are charge and mass balanced in each scenario? All care taken, but no responsibility admitted.

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Number of electron transferred in each case when potassium permanganate acts as oxidizing agent give MnO2, Mn²+ Mn(OH) 3 and MnO4²-?

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