In each of the following two redox reactions, I need to name the following:
- Oxidized Element
- Reduced Element
- Reducing Agent
- Oxidizing Agent
N2H4 (aq) + 2O2 (g) --> N2 (g) + 2H2O (g)
3Cl2 (g) + NaI (aq) + 3H2O (l) --> 6HCl (aq) + NaIO3
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For the first reaction, I know that water and oxygen gas both have zero as their oxidation state. However, my worksheet has N(sub 2) H(super 4), which makes no sense. Also, I'm guessing that Nitrogen gas (on the product side) would be negative 6? I'm confused.
For the second reaction, I know that both chlorine and water have oxidation states of zero. Na is a +1 and I is a -1. On the product side H is +1 and Cl is -1, but I have no idea how to find the oxidation state of NaIO(sub3), or Sodium Iodate.