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Transcript 
WRITING NET IONIC EQUATIONS
Net ionic equations are useful in that they show only those chemical species participating in a
chemical reaction. The key to being able to write net ionic equations is the ability to
recognize monoatomic and polyatomic ions, and the solubility rules. If you are weak in these
areas, a review of these concepts would be helpful before attempting to write net ionic
equations.
Precipitation Reactions
Let's first start with a complete chemical equation and see how the net ionic equation is
derived. Take for example the reaction of lead(II) nitrate with hydrochloric acid to form
lead(II) chloride and nitric acid, shown below:
Pb(NO3)2 (aq) + 2HCl (aq)
PbCl2 (s) + 2HNO3 (aq)
This complete equation may be rewritten in ionic form by using the solubility rules, and by
recognizing strong acids. All nitrates are soluble, therefore the lead(II) nitrate will be
dissociated. Both hydrochloric acid and nitric acid are strong acids and will therefore be
dissociated. The lead(II) chloride, however is insoluble--all halides are soluble except silver,
lead, and mercury(I) salts. The above equation written in its dissociated form is:
Pb2+(aq) + 2NO3⎯ (aq) + 2H+(aq) + 2Cl⎯ (aq)
PbCl2 (s) + 2H+(aq) + 2NO3⎯ (aq)
At this point, one may cancel out those ions which have not participated in the reaction.
Notice how the nitrate ions and hydrogen ions remain unchanged on both sides of the
reaction.
Pb2+(aq) + 2NO3⎯ (aq) + 2H +(aq) + 2Cl⎯ (aq)
PbCl2 (s) + 2H +(aq) + 2NO3⎯ (aq)
What remains is the net ionic equation, showing only those chemical species participating in
a chemical process:
Pb2+(aq) + 2Cl⎯ (aq)
PbCl2 (s)
It is possible to predict the net ionic equation given only the reactants. For example, suppose
you had to determine the net ionic equation resulting from the reaction of solutions of sodium
sulfate and barium bromide:
BaBr2 (aq) + Na2SO4 (aq)
?
One way to approach this problem is to determine what ions are in solution: Ba2+, Br⎯, Na+,
and SO42-. We know that barium bromide is soluble, but will sodium ions or sulfate ions
combine with barium ions to form an insoluble compound? Barium ions and sodium ions,
both being positive in charge will repel each other, so no compound is expected to form
between them. On the other hand, sulfate ions and barium ions could easily form barium
sulfate. Now it is just a matter of consulting the solubility rules to see if barium sulfate is
soluble or insoluble. According the solubility rules, all sulfates are soluble unless the cation is
silver, calcium, strontium, barium, mercury (I), or lead. As you can see, barium
sulfate will be insoluble. The sodium ions must therefore combine with bromide ions to form
sodium bromide. According to the solubility rules, sodium bromide should be soluble--all
compounds of sodium are soluble. Now we can write a complete balanced equation:
BaBr2 (aq) + Na2SO4 (aq)
BaSO4 (s) + 2NaBr (aq)
As before, the above equation can be rewritten showing the soluble species as ions in
solution:
Ba2+(aq) + 2Br⎯ (aq) + 2Na+(aq) + SO4 2-(aq)
BaSO4 (s) + 2Na+(aq) + 2Br⎯ (aq)
Next, cross out any species which have not changed on both sides of the reactions--these are
the spectator ions:
Ba2+(aq) + 2Br ⎯ (aq) + 2Na+(aq) + SO4 2-(aq)
BaSO4 (s) + 2Na+(aq) + 2Br ⎯ (aq)
What remains is the balanced, net ionic equation:
Ba2+(aq) + SO42-(aq)
BaSO4 (s)
Acid-Base Reactions
Net ionic equations are often applied to acid-base reactions, as well. The key to successfully
writing the net ionic equation for acid-base reactions is to be able to distinguish between a
strong and weak acid or base. The degree of dissociation for an acid is determined by the
strength of the acid. For a strong acid, dissociation is complete (100%), thus we would show
the acid dissociated into ions in the net ionic equation. Weak acids do not dissociate to a
great extent (usually < 3%). Weak acids are not shown to be dissociated in the net ionic
equation. Weak bases are also undissociated in solution.
There are six strong acids: HCl, HBr, HI, HNO3, HClO4 and H2SO4. Technically, only the
first dissociation of H2SO4 is strong; the second dissociation is weak. All other inorganic
acids are weak. Organic acids are weak, as well. Organic acids usually contain C, H, O in its
molecular formula, and in particular, a carboxylic acid functional group (COOH or CO2H).
For example, benzoic acid, HC6H5CO2 or C6H5COOH, is a weak acid. Ammonia (NH3) and
organic bases are weak bases. Organic bases usually contain C, N, H in their molecular
formula and often found as a class of compounds called amines. In fact, they often appear to
be as if one or more of the hydrogens on ammonia have been replaced with carbon group(s).
For example, CH3NH2 , methylamine, is a weak base.
The products produced commonly by an acid-base reaction are a salt and water. To write the
formula of the salt, it is helpful to know that the cation of the salt always comes from the
base and the anion of the salt always comes from the acid. One way to remember this is to
keep the consonants together and the vowels together (cation from the base and anion from
the acid).
Let’s apply some of these rules to some writing the net ionic equations for some acid-base
reactions. What will be the complete, total ionic and net ionic equations for the reaction of
nitric acid (HNO3) with potassium hydroxide (KOH)?
HNO3(aq)
+
KOH(aq)
?
The ions in solution are H+ , NO3⎯ , K+ , and OH⎯ . The cation of the base is potassium ion
(K+) and the anion of the acid is nitrate ion (NO3⎯), so the salt formed will be KNO3 and the
other product will be water. Since all nitrates are soluble, potassium nitrate will be aqueous
and the water will be in the liquid phase. The complete, balanced reaction is:
HNO3(aq)
+
KOH(aq)
KNO3(aq) + H2O(l)
Since nitric acid is a strong acid, it will completely dissociate in solution. From the solubility
rules, KOH is a group IA metal hydroxide, and thus will be soluble and dissociate
completely. Also from the solubility rules, all nitrates are soluble, so potassium nitrate
(KNO3) will be soluble and dissociate completely. Water is actually a very weak acid, and
will not be shown dissociated. The total ionic equation will be:
H+(aq) + NO3¯(aq) + K+(aq) + OH¯(aq)
K+(aq) + NO3¯(aq) + H2O(l)
Eliminating spectator ions, potassium ions and nitrate ions, will give the net ionic equation:
H+(aq) + NO3¯(aq) + K+(aq) + OH¯(aq)
K+(aq) + NO3¯(aq) + H2O(l)
What remains is the net ionic equation:
H+(aq) + OH¯(aq)
H2O(l)
Let’s see what happens with a weak acid-strong base reaction. What will be the complete,
total ionic and net ionic equation for the reaction of benzoic acid (HC6H5CO2) with sodium
hydroxide?
The salt formed will be NaC6H5O2 (Na+ from base and C6H5CO2¯ from acid). This salt is
soluble because all group IA compounds are soluble. Thus, the complete equation is:
HC6H5CO2(aq) + NaOH(aq)
NaC6H5CO2(aq) + H2O(l)
The ions found in solution are Na+, OH¯ and C6H5CO2¯. Since benzoic acid is a weak acid
(it contains carbon in its molecular formula), it will not be shown dissociated in the total
ionic or the net ionic equation. The total ionic equation is:
HC6H5CO2(aq) + Na+(aq) + OH¯(aq)
Na+(aq) + C6H5CO2¯(aq) + H2O(l)
In this case, only sodium ions are the spectator ions:
HC6H5CO2(aq) + Na+(aq) + OH¯(aq)
Na+(aq) + C6H5CO2¯(aq) + H2O(l)
What remains is the following net ionic equation:
HC6H5CO2(aq) + OH¯(aq)
C6H5CO2¯(aq) + H2O(l)
Finally, let’s look at an acid-base reaction involving a weak base and a strong acid. What
will be the complete, total ionic and net ionic equation for the reaction of HCl, a strong acid,
with methylamine (CH3NH2), a weak organic base? Since hydroxide is not a part of the
formula of the weak base, so water will not be a product. The complete reaction will be:
HCl(aq) + CH3NH2(aq)
CH3NH3Cl(aq)
HCl will be dissociated since it is a strong acid. Salts of organic bases are soluble and will be
dissociated. The total ionic equation that results is:
H+(aq) + Cl¯(aq) + CH3NH2(aq)
CH3NH3+(aq) + Cl¯(aq)
The only spectator ion present is the chloride ion:
H+(aq) + Cl¯(aq) + CH3NH2(aq)
CH3NH3+(aq) + Cl¯(aq)
What remains is the net ionic equation:
H+(aq) + CH3NH2(aq)
CH3NH3+(aq)
© Copyright, 2001, L. Ladon. Permission is granted to use and duplicate these materials for
non-profit educational use, under the following conditions: No changes or modifications will
be made without written permission from the author. Copyright registration marks and
author acknowledgement must be retained intact.
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