17.1 Balancing oxidation-reduction reactions (Page 5/12)

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{oxidation (balanced): 2Cr}^{3+} (a q) + {7H}_{2} O (l) ⟶ {Cr}_{2} O_{7}^{2−} (a q) + {14H}^{+} (a q) + {6e}^{−}

Checking the half-reaction:

\begin{array}{l} Cr: Does (2 \times 1) = (1 \times 2) ? Yes . \\ H: Does (7 \times 2) = (14 \times 1) ? Yes . \\ O: Does (7 \times 1) = (1 \times 7) ? Yes . \\ Charge: Does [2 \times (+3)] = [1 \times (−2) + 14 \times (+1) + 6 \times (−1)] ? Yes . \end{array}

Now work on the reduction. It is necessary to convert the four oxygen atoms in the permanganate into four water molecules. To do this, add eight H ⁺ to convert the oxygen into four water molecules:

{reduction (unbalanced): MnO}_{4}^{−} (a q) + {8H}^{+} (a q) ⟶ {Mn}^{2+} (a q) + {4H}_{2} O (l)

Then add five electrons to the left side to balance the charge:

{reduction (balanced): MnO}_{4}^{−} (a q) + {8H}^{+} (a q) + {5e}^{−} ⟶ {Mn}^{2+} (a q) + {4H}_{2} O (l)

Make sure to check the half-reaction:

\begin{array}{l} Mn: Does (1 \times 1) = (1 \times 1) ? Yes . \\ H: Does (8 \times 1) = (4 \times 2) ? Yes . \\ O: Does (1 \times 4) = (4 \times 1) ? Yes . \\ Charge: Does [1 \times (−1) + 8 \times (+1) + 5 \times (−1)] = [1 \times (+2)] ? Yes . \end{array}

Collecting what we have so far:

\begin{array}{l} oxidation: 2 {Cr}^{3+} (a q) + 7 H_{2} O (l) ⟶ {Cr}_{2} O_{7}^{2−} (a q) + 14 H^{+} (a q) + 6 e^{−} \\ reduction: {MnO}_{4}^{−} (a q) + 8 H^{+} (a q) + 5 e^{−} ⟶ {Mn}^{2+} (a q) + 4 H_{2} O (l) \end{array}

The least common multiple for the electrons is 30, so multiply the oxidation half-reaction by five, the reduction half-reaction by six, combine, and simplify:

10 {Cr}^{3+} (a q) + 35 H_{2} O (l) + 6 {MnO}_{4}^{−} (a q) + 48 H^{+} (a q) ⟶ 5 {Cr}_{2} O_{7}^{2−} (a q) + 70 H^{+} (a q) + 6 {Mn}^{2+} (a q) + 24 H_{2} O (l)

10 {Cr}^{3+} (a q) + 11 H_{2} O (l) + 6 {MnO}_{4}^{−} (a q) ⟶ 5 {Cr}_{2} O_{7}^{2−} (a q) + 22 H^{+} (a q) + 6 {Mn}^{2+} (a q)

Checking each side of the equation:

\begin{array}{l} Mn: Does (6 \times 1) = (6 \times 1) ? Yes . \\ Cr: Does (10 \times 1) = (5 \times 2) ? Yes . \\ H: Does (11 \times 2) = (22 \times 1) ? Yes . \\ O: Does (11 \times 1 + 6 \times 4) = (5 \times 7) ? Yes . \\ Charge: Does [10 \times (+3) + 6 \times (−1)] = [5 \times (−2) + 22 \times (+1) + 6 \times (+2)] ? Yes . \end{array}

This is the balanced equation in acidic solution.

Check your learning

Balance the following equation in acidic solution:

{Hg}_{2}^{2+} + Ag ⟶ Hg + {Ag}^{+}

Answer:

${Hg}_{2}^{2+} (a q) + 2Ag (s) ⟶ 2Hg (l) + {2Ag}^{+} (a q)$

Balancing basic oxidation-reduction reactions

Balance the following reaction equation in basic solution:

{MnO}_{4}^{−} (a q) + Cr {(OH)}_{3} (s) ⟶ {MnO}_{2} (s) + {CrO}_{4}^{2−} (a q)

Solution

This is an oxidation-reduction reaction, so start by collecting the species given into an unbalanced oxidation half-reaction and an unbalanced reduction half-reaction

\begin{array}{l} oxidation (unbalanced): {Cr(OH)}_{3} (s) ⟶ {CrO}_{4}^{2−} (a q) \\ reduction (unbalanced): {MnO}_{4}^{−} (a q) ⟶ {MnO}_{2} (s) \end{array}

Starting with the oxidation half-reaction, we can balance the chromium

{oxidation (unbalanced): Cr(OH)}_{3} (s) ⟶ {CrO}_{4}^{2−} (a q)

In acidic solution, we can use or generate hydrogen ions (H ⁺ ). Adding one water molecule to the left side provides the necessary oxygen; the “left over” hydrogen appears as five H ⁺ on the right side:

{oxidation (unbalanced): Cr(OH)}_{3} (s) + H_{2} O (l) ⟶ {CrO}_{4}^{2−} (a q) + {5H}^{+} (a q)

The left side of the equation has a total charge of [0], and the right side a total charge of [−2 + 5 $\times$ (+1) = +3]. The difference is three, adding three electrons to the right side produces a mass- and charge-balanced oxidation half-reaction (in acidic solution):

{oxidation (balanced): Cr(OH)}_{3} (s) + H_{2} O (l) ⟶ {CrO}_{4}^{2−} (a q) + {5H}^{+} (a q) + {3e}^{−}

Checking the half-reaction:

\begin{array}{l} Cr: Does (1 \times 1) = (1 \times 1) ? Yes . \\ H: Does (1 \times 3 + 1 \times 2) = (5 \times 1) ? Yes . \\ O: Does (1 \times 3 + 1 \times 1) = (4 \times 1) ? Yes . \\ Charge: Does [0 = [1 \times (−2) + 5 \times (+1) + 3 \times (−1)] ? Yes . \end{array}

Now work on the reduction. It is necessary to convert the four O atoms in the MnO ₄ ⁻ minus the two O atoms in MnO ₂ into two water molecules. To do this, add four H ⁺ to convert the oxygen into two water molecules:

{reduction (unbalanced): MnO}_{4}^{−} (a q) + {4H}^{+} (a q) ⟶ {MnO}_{2} (s) + {2H}_{2} O (l)

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Source: OpenStax, Chemistry. OpenStax CNX. May 20, 2015 Download for free at http://legacy.cnx.org/content/col11760/1.9

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