- #1
m0286
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Hello I am confused with the half-cell method. Thought i had it. Did two questions. now I am stuck on the third?? PLEASE HELP!
It says:
Balance the following equations by the half-cell method. Show both half-cell reactions and identify them ad oxidation or reduction.
3) Cl2(g) + OH- <=> Cl- + ClO3^- + H2O(l)
I have been able to balance them and follow the steps just for this one I am confused on finding the oxidation numbers?
For ClO3^- I got O as 2- and therefore Cl as +5. in theH2O i know H is 1+ and O is 2-. the Cl2 i believe is 1- and same for the Cl-. I am not sure when it comes to the OH-.
The Cl will be the oxidation since it increases from 1- to 5+. But I am not sure with the OH so i can't tell which other one changes. PLEASE HELP! THANKS
It says:
Balance the following equations by the half-cell method. Show both half-cell reactions and identify them ad oxidation or reduction.
3) Cl2(g) + OH- <=> Cl- + ClO3^- + H2O(l)
I have been able to balance them and follow the steps just for this one I am confused on finding the oxidation numbers?
For ClO3^- I got O as 2- and therefore Cl as +5. in theH2O i know H is 1+ and O is 2-. the Cl2 i believe is 1- and same for the Cl-. I am not sure when it comes to the OH-.
The Cl will be the oxidation since it increases from 1- to 5+. But I am not sure with the OH so i can't tell which other one changes. PLEASE HELP! THANKS