How to find pH of solution of NH4OH and HCl where NH4OH is limiting reagent?
Answers
Answer:
Explanation:
Your starting point here will be the balanced chemical equation for this neutralization reaction
HCl
(aq]
+
NH
3(aq]
→
NH
+
4(aq]
+
Cl
−
(aq]
Keep in mind, you're mixing hydrochloric acid, strong acid, and ammonia, a weak base, which means that even if the neutralization is complete, the pH of the resulting solution will not be equal to
7
at room temperature.
So, your goal here is to determine if mixing the given solutions will result in a complete neutralization.
As you can see, hydrochloric acid and ammonia react in a
1
:
1
mole ratio. This means that you need equal numbers of moles of each reactant in order to get a complete neutralization.
Use the molarities and volumes of the two solutions to determine how many moles of each you're adding to the final solution
c
=
n
V
⇒
n
=
c
⋅
V
n
H
C
l
=
0.1 M
⋅
25
⋅
10
−
3
L
=
0.0025 moles HCl
n
N
H
3
=
0.2 M
⋅
25
⋅
10
−
3
L
=
0.0050 moles NH
3
Since you have twice as many moles of ammonia than you have of hydrochloric acid, you can conclude that the acid will act as a limiting reagent, i.e. it will be completely consumed by the reaction.
Now, since you have a
1
:
1
mole ratio between both reactants and the ammonium ions,
NH
+
4
, the conjugate acid of ammonia, it follows that the reaction will produce as many moles as you have moles of reactants taking part in the reaction.
So, if
0.0025
moles of hydrochloric acid will react with
0.0025
moles of ammonia, the reaction will produce
n
N
H
+
4
=
0.0025 moles
of ammonium ions.
This means that after the reaction is complete, the solution will contain
n
H
C
l
=
0
→
completely consumed
n
N
H
3
=
0.0050 moles
−
0.0025 moles
=
0.0025 moles NH
3
n
N
H
+
4
=
0.0025 moles NH
+
4
You now have a solution that contains a weak base and its conjugate acid
→
a buffer solution.
The total volume of the solution will be
V
total
=
V
H
C
l
+
V
N
H
3
V
total
=
25 mL
+
25 mL
=
50 mL
This means that the concentration of ammonia and of ammonium ions in the resulting solution will be
[
NH
3
]
=
[
NH
+
4
]
=
0.0025 moles
50
⋅
10
−
3
L
=
0.050 M
Before moving on, look for the base dissociation constant,
K
b
, of ammonia at room temperature. You'll find it listed as
K
b
=
1.8
⋅
10
−
5
As you know the pH of a buffer that contains a weak base and its conjugate acid can be determined using the solution's pOH, which is given by the Henderson - Hasselbalch equation
pOH
=
p
K
b
+
log
(
[
conjugate acid
]
[
weak base
]
)
Even without doing any calculation, you can look at this equation and say that when you have equal concentrations of weak base and conjugate acid, the pOH of the solution will be equal to
p
K
b
, since
[
NH
+
4
]
=
[
NH
3
]
⇒
log
(
[
NH
+
4
]
[
NH
3
]
)
=
0
Since
p
k
b
=
−
log
(
K
b
)
you will have
pOH
=
−
log
(
1.8
⋅
10
−
5
)
=
4.74
The pH of the buffer will thus be
pH
+
pOH
=
14
pH
=
14
−
4.74
=
9.26
Now, phenolphthalein, itself a weak acid, is an indicator that is colorless at pH values that are below
8
and pink, even fuschia, at pH value that are above
10
and below
12
.
The half-way stage, where you have equal amounts of phenolphthalein and ionized phenolphthalein, takes place at a pH of about
9.6
. That means that in your case, the solution will be pale to bright pink in color.
That happens because mixing colorless and pink will simply get you a pale shade of pink.