Question #1a13e

1 Answer
Stefan V.
Jun 20, 2015

Here's how the complete ionic equation and the net ionic equation will look like for this reaction.

Explanation:

You're mixing sulfuric acid, H_2SO_4, which is a strong acid, and sodium hydroxide, NaOH, which is a strong base.

This implies that the two compounds will be completely dissociated in aqueous solution. In the case of sulfuric acid, you have

H_2SO_(4(aq)) -> 2H_((aq))^(+) + SO_(4(aq))^(2-)

One mole of of sulfuric acid will produce 2 moles of H^(+) and 1 mole of SO_4^(2-).

In the case of sodium hydroxide, you have

NaOH_((aq)) -> Na_((aq))^(+) + OH_((aq))^(-)

This time, one mole of sodium hydroxide will produce 1 mole of Na^(+) and 1 mole of OH^(-) in aqueous solution.

Sodium sulfate, Na_2SO_4, is soluble in aqueous solution, which implies that it too will exist as ions.

Na_2SO_(4(aq)) -> 2Na_((aq))^(+) + SO_(4(aq))^(2-)

Your balanced chemical equation for this neutralization reaction looks like this

H_2SO_(4(aq)) + color(red)(2)NaOH_((aq)) -> Na_2SO_(4(aq)) + 2H_2O_((l))

The complete ionic equation will be

2H_((aq))^(+) + SO_(4(aq))^(2-) + color(red)(2)Na_((aq))^(+) + color(red)(2)OH_((aq))^(-) -> 2Na_((aq))^(+) + SO_(4(aq))^(2-) + 2H_2O_((l))

To get the net ionic equation, eliminate the spectator ions, i.e. the ions that are on both sides of the equation. This will get you

2H_((aq))^(+) + cancel(SO_(4(aq))^(2-)) + cancel(color(red)(2)Na_((aq))^(+)) + color(red)(2)OH_((aq))^(-) -> cancel(2Na_((aq))^(+)) + cancel(SO_(4(aq))^(2-)) + 2H_2O_((l))

2H_((aq))^(+) + 2OH_((aq))^(-) -> 2H_2O_((l))

You can simplify this by 2 to get

H_((aq))^(+) + OH_((aq))^(-) -> H_2O_((l))

Related questions
See all questions in Reactions Between Ions in Solutions
Impact of this question
4132 views around the world
You can reuse this answer
Creative Commons License