Can someone please help me with B and C. I understand A and D fine, l am just confused in which part of the solution is reducing.
For C l believe it is the Chlorine but l am not sure.
b) Well you have Zinc nitrate, Zinc, and MnO4 with HCl, and K+ and NO3
To start with, K+ (aq) is fairly unreactive as it's down the bottom of the table - it would only react with Li(s) so it will not be appearing in this reaction, it's just there to balance out the charges. Platinum is unreactive so is ignored. NO3 is unreactive so is ignored.
As the equation \(\ce{MnO4^-(aq) + 8H+(aq) + 5e- -> Mn^2+(aq) + 4H2O(l)}\) is above \(\ce{Zn^2+(aq) + 2e- -> Zn(s)}\), we know that Zn(s) is oxidised to Zn
2+, and the MnO4- along with the H+ from HCl is reduced to Mn
2+ and H2O.
From you have your two equations, their standard reduction potentials, and which is oxidising and reducing
Does this help?
