How do you balance $N a C l O_{3} \to N a C l + O_{2}$ $NaClO_3 -> NaCl + O_2$ ?

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How do you balance $N a C l O_{3} \to N a C l + O_{2}$ $NaClO_3 -> NaCl + O_2$ ?

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Answer 1 · 2016-02-16T20:36:17

$2 N a C l O_{3} (s) \to 2 N a C l (s) + 3 O_{2} (g)$ $2NaClO_3(s)->2NaCl(s)+3O_2(g)$
or
$N a C l O_{3} (a q) + N a_{2} S O_{3} (a q) \to N a C l (a q) + O_{2} (g) + N a_{2} S O_{4} (a q)$ $NaClO_3(aq)+Na_2SO_3(aq)->NaCl(aq)+O_2(g)+Na_2SO_4(aq)$

Explanation:

To balance the reaction, if it is happening at the solid state (decomposition):

$2 N a C l O_{3} (s) \to 2 N a C l (s) + 3 O_{2} (g)$ $2NaClO_3(s)->2NaCl(s)+3O_2(g)$

However, to balance the reaction, if it is happening in aqueous medium:

$N a C l O_{3} (a q) \to N a C l (a q) + O_{2} (g)$ $NaClO_3(aq)->NaCl(aq)+O_2(g)$

We should recognize that this is a reduction half equation since the oxidation number of oxygen is increasing from $(- 2)$ $(-2)$ in $N a C l O_{3}$ $NaClO_3$ to $(0)$ $(0)$ in $O_{2}$ $O_2$ .

The oxidation numbers for $N a$ $Na$ and $C l$ $Cl$ are not changing and they are $(+ 1)$ $(+1)$ and $(- 1)$ $(-1)$ respectively.

To balance this reaction then:
$N a C l O_{3} (a q) + 2 H^{+} (a q) + 2 e^{-} \to N a C l (a q) + O_{2} (g) + H_{2} O (l)$ $NaClO_3(aq)+2H^(+)(aq)+2e^(-)->NaCl(aq)+O_2(g)+H_2O(l)$

Therefore, in order for this reaction to occur, you will need a reducing agent which will reduce the oxidizing agent $N a C l O_{3}$ $NaClO_3$ such as for example $N a_{2} S O_{3}$ $Na_2SO_3$ .

The oxidation half equation will then be:

$S O_{3}^{2 -} (a q) + H_{2} O (l) \to S O_{4}^{2 -} (a q) + 2 H^{+} (a q) + 2 e^{-}$ $SO_3^(2-)(aq)+H_2O(l)->SO_4^(2-)(aq)+2H^(+)(aq)+2e^(-)$

The redox reaction will thus be:

Oxidation: $S O_{3}^{2 -} (a q) + H_{2} O (l) \to S O_{4}^{2 -} (a q) + 2 H^{+} (a q) + 2 e^{-}$ $SO_3^(2-)(aq)+cancel(color(green)(H_2O(l)))->SO_4^(2-)(aq) +cancel(color(blue)(2H^(+)(aq)))+cancel(color(red)(2e^(-)))$

Reduction: $N a C l O_{3} (a q) + 2 H^{+} (a q) + 2 e^{-} \to N a C l (a q) + O_{2} (g) + H_{2} O (l)$ $NaClO_3(aq)+cancel(color(blue)(2H^(+)(aq)))+cancel(color(red)(2e^(-)))->NaCl(aq)+O_2(g)+cancel(color(green)(H_2O(l)))$

RedOx:
$N a C l O_{3} (a q) + S O_{3}^{2 -} (a q) \to N a C l (a q) + O_{2} (g) + S O_{4}^{2 -} (a q)$ $NaClO_3(aq)+SO_3^(2-)(aq)->NaCl(aq)+O_2(g)+SO_4^(2-)(aq)$
or
$N a C l O_{3} (a q) + N a_{2} S O_{3} (a q) \to N a C l (a q) + O_{2} (g) + N a_{2} S O_{4} (a q)$ $NaClO_3(aq)+Na_2SO_3(aq)->NaCl(aq)+O_2(g)+Na_2SO_4(aq)$

Here is a video that explains how to balance a redox reaction in acidic medium:
Balancing Redox Reactions | Acidic Medium.

And here is another one on how to balance a redox reaction in basic medium:
Balancing Redox Reactions | Basic Medium.

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