We see that ethanol is oxidized; it is the reducing agent. Cr 2 O 72 ions are reduced; they are
the oxidizing agent.HC 2 H 5 OHCr 2 O 72 88nCr^3 C 2 H 4 OH 2 O
3
1Oxidation Numbers Change/Atom Equalizing Changes Gives
Cr 6 88nCr 3 31(3) 3
C 2 88nC 1 13(1) 3Each change must be multiplied by two because there are 2 Cr in each Cr 2 O 72 and 2 C in
C 2 H 5 OH.2(3)6 (total decrease) 2(3)6 (total increase)We need 2 Cr and 6 C on each side of the equation to balance the redox part.H 3C 2 H 5 OH Cr 2 O 72 88n 2Cr^3 3C 2 H 4 O H 2 ONow we balance H and O using our chart. There are 10 O on the left and only 4 O on the
right. So we add 6 moreH 2 O molecules on the right.H3C 2 H 5 OHCr 2 O 72 88n2Cr^3 3C 2 H 4 O 7H 2 ONow there are 26 H on the right and only 19 on the left. So we add 7 moreHions on the
left to give the balanced net ionic equation.8H(aq)3C 2 H 5 OH(aq)Cr 2 O 72 (aq)88n2Cr^3 (aq)3C 2 H 4 O(aq)7H 2 O()You should now work Exercise 54.Every balanced equation must have both mass balance and charge balance.Once the redox
part of an equation has been balanced, we must next count eitheratoms or charges. After
we balanced the redox part in Example 11-21, we hadH3C 2 H 5 OHCr 2 O 72 88n2Cr^3 3C 2 H 4 OH 2 OThe net charge on the left side is (1 2 ) 1 . On the right, it is 2(3) 6 . Because
His the only charged species whose coefficient isn’t known,we add 7 moreHto give a net
charge of 6on both sides.8H 3C 2 H 5 OHCr 2 O 72 88n2Cr^3 3C 2 H 4 OH 2 ONow we have 10 O on the left and only 4 O on the right. We add six moreH 2 O mole-
cules to give the balanced net ionic equation.8H(aq)3C 2 H 5 OH()Cr 2 O 72 (aq)88n2Cr^3 (aq)3C 2 H 4 O() 7H 2 O()How can you tell whether to balance atoms or charges first? Look at the equation after
you have balanced the redox part.Decide which is simpler, and do that. In the preceding
equation, it is easier to balance charges than to balance atoms.424 CHAPTER 11: Reactions in Aqueous Solutions II: Calculations
2 6 3 18 n
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