What does an acid + a base create?

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What does an acid + a base create?

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Answer 1 · 2016-03-28T00:24:51

Acid + base = salt + water

Explanation:

This is called a neutralisation reaction. Acids and bases react, if they are in the right proportions, to neutralise one another.

For example:

$H C l + N a O H \to N a C l + H_{2} O$ $HCl + NaOH to NaCl + H_2O$

in this case the salt is sodium chloride, common table salt, but that's not always what happens:

$H N O_{3} + K O H \to K N O_{3} + H_{20}$ $HNO_3 + KOH to KNO_3 + H_20$

In this case nitric acid reacts with potassium hydroxide to give potassium nitrate (the salt). You can see that in both cases, an acid plus a base has given a salt plus water.

Answer 2 · 2016-03-28T01:26:24

In general, the reaction forms the conjugate base of the acid and the conjugate acid of the base.

GENERIC ACID/BASE REACTION

If we suppose we had a generic acid $HA$ $"HA"$ and a generic base $B$ $"B"$ , then regardless of acid strength, we would get:

$stackrel("acid")overbrace("HA") + stackrel("base")overbrace("B") rightleftharpoons stackrel("conjugate acid")overbrace("BH"^(+)) + stackrel("conjugate base")overbrace("A"^(-))$

where the equilibrium arrows are skewed towards the products if the $"pKa"$ of $"HA"$ is lower than that of $"BH"^(+)$ , or skewed towards the reactants if the $"pKa"$ of $"HA"$ is higher than that of $"BH"^(+)$ .

As you can see, we have that:

The conjugate base of an acid is the acid with one less proton.
The conjugate acid of a base is the base with one more proton.

And if you aren't familiar, the $"pKa"$ is the negative base 10 logarithm of the $"K"_a$ , and the $"K"_a$ is the acid dissociation constant. The higher the $"K"_a$ , the more easily the acid loses its proton.

HOW DO I KNOW WHICH WAY IT'S SKEWED?

Remember (or recognize) that the equilibrium lies on the side of the weaker acid, i.e. the acid with the stronger bond with the proton ( $"H"^(+)$ ). You can tell what the relative acid strength is by knowing that the acid with the higher $"pKa"$ is the weaker acid.

For instance, $"NH"_4$ , ammonium, has a $"pKa"$ of about $9.4$ . It is a weaker acid than $"HC"_2"H"_3"O"_2$ , or acetic acid, which has a $"pKa"$ of about $4.74$ , so if it was this type of equilibrium, then it would lie on the side of ammonium like so:

$stackrel("acid")overbrace("HC"_2"H"_3"O"_2) + stackrel("base")overbrace("NH"_3) -> stackrel("conjugate acid")overbrace("NH"_4^(+)) + stackrel("conjugate base")overbrace("C"_2"H"_3"O"_2^(-))$
$"pKa" ~~ "4.74" color(white)(--a--) "pKa" ~~ "9.4"$

What happens is that since the $"pKa"$ of ammonium is significantly higher than that of acetic acid, the ammonia ( $"NH"_3$ ) is easily capable of donating its nitrogen's two valence electrons to take a proton from acetic acid ( $"HC"_2"H"_3"O"_2$ ) and form ammonium, so it does.

A trick to figure out to what extent is to do the calculation

$color(blue)((["BH"^(+)])/(["HA"]) = 10^("pKa,product acid" - "pKa,reactant acid"))$ .

From that you would figure out that this reaction is favored by about
$\mathbf(45000)$ to $\mathbf(1)$ on the products side (the concentration of ammonium is over $45000$ times that of acetic acid), since $10^(9.4-4.74) = ~~45708.8$ .

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What does an acid + a base create?

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