Question #8ab70

1 Answer
Stefan V.
Jul 19, 2017

See below.

Explanation:

I'm not really sure what you need here because the problem actually tells you what you must do in order to get the answer right--balance the number of electrons!

So know that aluminium cations, "Al"^(3+)Al3+, are being reduced to elemental aluminium, "Al"Al, so you can say that the reduction half-reaction looks like this

"Al"^(3+) + 3"e"^(-) -> "Al"Al3++3eAl

This takes place at the cathode.

Magnesium metal, on the other hand, is being oxidized to magnesium cations, "Mg"^(2+)Mg2+, so you can say that the oxidation half-reaction looks like this

"Mg" -> "Mg"^(2+) + 2"e"^(-)MgMg2++2e

This takes place at the anode.

Now, in any redox reaction, the number of electrons lost in the oxidation half-reaction must be equal to the number of electrons gained in the reduction half-reaction.

In other words, all the electrons that are used to reduce a species must come exclusively from the species that is being oxidized.

So every atom of magnesium provides 22 electrons when oxidized. Since every atom of aluminium requires 33 electrons to be reduced, you will need to have 33 atoms of magnesium for every 22 atoms of aluminium in order for the redox reaction to work.

{("Al"^(3+) + 3"e"^(-) -> "Al" color(white)(aaaaaaaaaaa) | xx 2), (color(white)(aaaaaaa)"Mg" -> "Mg"^(2+) + 2"e"^(-) " " | xx 3) :}

This means that you have

{(2"Al"^(3+) + 6"e"^(-) -> 2"Al"), (color(white)(aaaaaaa)3"Mg" -> 3"Mg"^(2+) + 6"e"^(-)) :}
color(white)(aaaaaaaaaaaaaaaaaaaaaaaaaaa)/color(white)(a)
2"Al"^(3+) + color(red)(cancel(color(black)(6"e"^(-)))) + 3"Mg" -> 2"Al" + color(red)(cancel(color(black)(6"e"^(-)))) + 3"Mg"^(2+)

which gets you

2"Al"^(3+) + 3"Mg" -> 3"Mg"^(2+) + 2"Al"

The galvanic cell would look something like this

![hrsbstaff.ednet.ns.ca)

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