Chemistry Redox Reactions
Hello! I need some help balancing the acid and base formulas for redox reactions. In particular, I need help with the redox reaction:
H2O2 + I- ==> H2O + I2
My reduction reaction is (1e- + H2O2 ==> H2O)
My oxidation reaction is (2I- ==> I2 + 2e-)
My acid reaction is (4H+ + 2H2O2 + 2I- ==> 2H2O + I2 + 2H2O)
And then I'm confused with the base formula. According to the redox rules I've learned, the reaction should be (2H2O + 2H2O + I2 ==> 2H2O2 + 2I + 4OH-). However, this reaction doesn't balance (there are too many oxygens on the product side). What am I doing wrong? Please help!
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