Troubles with this particular problem:
I need to Balance the following equations by the half-cell method. Show both half-cell
reactions and identify them as oxidation or reduction.
Cl2 (g) + OH- <---> Cl- + ClO3^- + H2O(l)
so far I have: Cl2 --> Cl-
Cl2 + 2e- --> 2Cl-
Cl2 --> ClO3-
Cl2 + 3H2O --> 2ClO3^- + 6H+ + 6e-
2 e-'s on the Left and 6 e-'s on the right therefore I now have to multiply the first equation by 3.
=> 3Cl2 + 6e- --> 6 Cl-
Is this right so far??? I am now unsure what to do next??? What do I do with the OH-? Please help as I have no clue where to go from here!!
Thanks a bunch