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Balancing redox reactions
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Two methods for balancing redox reactions:
Oxidation number method Half-reaction method. Balance redox equations using the oxidation number method. Balance redox equations in acidic and basic solutions using the half reaction method.
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Why we balance electrons lost and gained in redox equations.
gains 1e- x 2 atoms = 2e- +1 -1 Cu Cl2 → Cu Cl- 2 2 2 loses 1e- x 2 = 2e- Have to make sure the number of atoms and the number of electrons transferred are equal.
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K2Cr2O7 + H2O + S → SO2 + KOH + Cr2O3
Step 1: Assign oxidation numbers. +1 +6 -2 +1 -2 +4 -2 +1 -2 +1 +3 -2 K2Cr2O7 + H2O + S → SO2 + KOH + Cr2O3 Step 2: Calculate number of electrons lost/gained – watch the number of atoms. lose 4e- K2Cr2O7 + H2O + S → SO2 + KOH + Cr2O3 -2 +4 +1 +6 +3 gains 3e- x 2 atoms = 6e-
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K2Cr2O7 + H2O + S → SO2 + KOH + Cr2O3
Step 3: Balance atoms that lose / gain electrons. – Use lowest common multiple. – Massage numbers to make atoms equal. lose 4e- x 3 = 12e- K2Cr2O7 + H2O + S → SO2 + KOH + Cr2O3 +4 +6 +3 2 3 3 2 gains 3e- x 2 atoms = 6e- x 2 = 12e- Step 4: Balance others by conventional method. 2 K2Cr2O7 + H2O + S → SO2 + KOH + Cr2O3 2 3 3 4 2
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P + HNO3 + H2O → NO + H3PO4 3 5 2 5 3 +1 +5 -2 +1 -2 +2 -2 +1 +5 -2
lose 5e- x 3 = 15e- +1 +5 -2 +1 -2 +2 -2 +1 +5 -2 P + HNO3 + H2O → NO + H3PO4 3 5 2 5 3 gains 3e- x 5 = 15e-
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H2SeO3 + HClO3 → H2SeO4 + Cl2 + H2O
lose 2e- x 5 = 10e- +1 +4 -2 +1 +5 -2 +1 +6 -2 +1 -2 5 H2SeO HClO3 → H2SeO Cl2 + H2O 2 5 1 gains 5e- x 2 = 10e- Step 3: Balance atoms that lose / gain electrons. – Use lowest common multiple. – Massage numbers to make atoms equal.
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