(Use the information in the table below. Show the half reactions and the potentials for each half reaction.)
Determine whether the following redox reaction is spontaneous as written. 2Al(s) + 3Zn2+(aq) → 2Al3+(aq) + 3Zn(s)
Reduction Potentials at 25°C
Electrode Half-Reaction E0(V)
Mg2+/Mg Mg2+ + 2e– → Mg –2.37
Al3+/Al Al3+ + 3e– → Al –1.66
Zn2+/Zn Zn2+ + 2e– → Zn –0.76
Ag2+/Ag Ag+ + e– → Ag +0.80
9 answers
This is done just like the Ag/Mg^2+ I did earlier. What is it you don't understand?
I'm not sure how to write out the equation . . . & I don't want to get it wrong.
Here is the earlier problem which I showed was -Ecell which makes it non-spontaneous.
2Ag(s) + Mg2+(aq) → 2Ag+ (aq) + Mg(s) [5 points]
You just pair them up. 2Ag(s) on the left goes with 2Ag^+ on the right.
Then Mg^2+ on the left goes with Mg(s) on the right
Then you pick the Ag^+ +e ==> Ag(s) from the table (it's the reverse in the table so you reverse the sign and make it -0.80). Then you pick the Mg^2+ + 2e ==> Mg(s) from the table to get the -2.37. The Ecell is the sum of the two.
The problem of Al and Zn^2+ is done the same way. So have at it. Pairing them up doesn't look that complicated. Have at it and I'll check it for you.
2Ag(s) + Mg2+(aq) → 2Ag+ (aq) + Mg(s) [5 points]
You just pair them up. 2Ag(s) on the left goes with 2Ag^+ on the right.
Then Mg^2+ on the left goes with Mg(s) on the right
Then you pick the Ag^+ +e ==> Ag(s) from the table (it's the reverse in the table so you reverse the sign and make it -0.80). Then you pick the Mg^2+ + 2e ==> Mg(s) from the table to get the -2.37. The Ecell is the sum of the two.
The problem of Al and Zn^2+ is done the same way. So have at it. Pairing them up doesn't look that complicated. Have at it and I'll check it for you.
Is this correct:
2Al(s) + 3Zn2+(aq) 2Al3+(aq) + 3Zn(s)
2Al(s) + 2A13+(ag) E = +1.66
3Zn2+(aq) + 3Zn(s) E = +0.76
2Al(s) + 3Zn2+ 2Al3+ + 3Zn(s) E = 2.42
The E cell is positive therefore it is spontaneous
2Al(s) + 3Zn2+(aq) 2Al3+(aq) + 3Zn(s)
2Al(s) + 2A13+(ag) E = +1.66
3Zn2+(aq) + 3Zn(s) E = +0.76
2Al(s) + 3Zn2+ 2Al3+ + 3Zn(s) E = 2.42
The E cell is positive therefore it is spontaneous
Almost. The balanced equation is correct and the two half reactions are correct. One of the potentials is wrong. Here is the table I've printed.
Al3+/Al Al3+ + 3e– → Al –1.66
Zn2+/Zn Zn2+ + 2e– → Zn –0.76.
You have the Al couple correct. It is listed as Al^3+ to Al which is the reverse of what you want so you correctly changed the sign to +1.66. But the other one you want Zn^2+ to Zn and that's the way the table gives it; therefore, you don't change the sign. but keep it at = -0.76. Ecell is still positive and it will be spontaneous. You didn't great.
Al3+/Al Al3+ + 3e– → Al –1.66
Zn2+/Zn Zn2+ + 2e– → Zn –0.76.
You have the Al couple correct. It is listed as Al^3+ to Al which is the reverse of what you want so you correctly changed the sign to +1.66. But the other one you want Zn^2+ to Zn and that's the way the table gives it; therefore, you don't change the sign. but keep it at = -0.76. Ecell is still positive and it will be spontaneous. You didn't great.
It may be worth pointing out that when dealing with these equations, you will ALWAYS change the sign of one because it will always be the reverse of what you want but the other half cell will not change the sign.
Thank you so much! ! 😊
I just reread my post and I said "You didn't great!" Obviously I meant YOU DID GREAT! Good job.
Thank you Sir! Today I'm doing my last Chemistry test, & I have the 2nd semester exam due in about two days. It will be the end of chemistry class & I'm kinda sad about it. 😕 I learned a lot during the class & you helped me a lot also. Thank you! :)