Kb = 10-14/1.75 x 10-5 = 5.71 x 10-10
![[OH-] = sqrt(5.71E-10 *(0.15M - [OH-])) = 9.26E-06](InClass03Ans01.gif)
This is close enough.
pOH = 5.03; pH = 14 - 5.03 = 8.96
Acids and Bases
October 17, 1996 Name ___Zellmer-Key_____
Here is a table of Acid Dissociation Constants at 25deg. C. Values are given in the "E" style of scientific notation, i.e. 1.75E-05 is 1.75 x 10-5.
Name
|
K1
(or Ka)
|
K2
|
K3
|
K4
|
| Acetic
acid
|
1.75E-05
|
|||
| Ammonium
ion
|
5.70E-10
|
|||
| Arsenic
acid (H3AsO4)
|
5.8E-03
|
1.10E-07
|
3.2E-12
|
|
| Benzoic
acid
|
6.8E-05
|
|||
| Pyridinium
ion (C5H5NH+)
|
5.9E-06
|
|||
| Carbonic
acid
|
4.45E-07
|
4.69E-11
|
||
| o-Phthalic
acid
|
1.12E-03
|
3.90E-06
|
1. For each substance below, state if it is a Strong Acid (SA), Strong Base (SB), Weak Acid (WA), Weak Base (WB), Buffer (Buffer), or Amphiprotic (Amphiprotic). As a first approximation, certain species of polyprotic acids and some mixtures can be considered to fall into one of these categories also.
Substance
|
What
is it?
|
Substance
|
What
is it?
|
| Acetic
Acid
|
WA
|
CH3COONa
|
WB
|
| "KHP"
(P=phthalate)
|
Amphiprot
|
Pyridine
hydrochloride
|
WA
|
| CO2
in water
|
WA
|
HNO3
|
SA
|
| Sodium
Benzoate
|
WB
|
0.001M
KOH
|
SB
|
| 0.1M
NH3 + 0.2M NH4+
|
Buffer
|
0.1M
NaOH + 0.01M NH3
|
~SB
|
2. Calculate the pH of 0.001 M KOH.
Strong Base problem
[OH-] = Csb = 1.0 x 10-3; pOH=3.0; pH = 14 - 3.0 = 11.0
3. Calculate the pH of 0.15M sodium acetate.
Weak Base problem (salt of acetic acid)Kb = 10-14/1.75 x 10-5 = 5.71 x 10-10
This is close enough.
pOH = 5.03; pH = 14 - 5.03 = 8.96
4. Calculate the pH of 0.001M Benzoic Acid.
This is a Weak Acid problem.
pH = -log(2.29 x 10-4) = 3.64
5. 50.0 mL of a buffer consisting of 0.100M acetic acid and 0.200 M sodium acetate is about to be hit with 2.0 mL of 0.100 M HCl.
A. Calculate the pH of the buffer before the HCl is added.
B. Use an Initial/Final Spreadsheet to calculate the pH of the solution after the HCl has been added. (It may or may not still be a buffer.)
Balanced Chemical Reaction: CH3COO- + HCl = CH3COOH + Cl-
CH3COOH
CH3COO- H+ (HCl) Volume Initial mmoles 5.00 mmole
10.00 mmole 0.2 mmole 50+2 mL Final mmoles 5.2 mmole
9.80 mmole 0 mmole 52 mL Molarity 5.2 mmole/52mL
9.8mmole/52mL 0 M
Note that the pH was changed very little. The buffer has done its job.
6. Sketch the titration curve of 50.0 mL of 0.0500 M pyridinium chloride with 0.100 M NaOH.
Ka = 5.90 x 10-6; pKa = 5.23
Calculate mL to equivalence point:
0.05 mmole pyr
50 mL 1 NaOH mL mL 1 pyr 0.1 mmole NaOH = 25.0 mL
The buffer region will center on pH = pKa = 5.23.
The final pH will be that of diluted 0.1 M NaOH, or about 12.
Since the break is 12 - 5.2 = 6.8 which is greater than 4, it will be sharp.
![[H+]1 = sqrt(6.8E-05*(0.001 - [H+] as 0)) = 2.61E-04](InClass03Ans02.gif)
![[H+]2 = sqrt(6.8E-05*(0.001 - 2.61E-04)) = 2.24E-04](InClass03Ans03.gif)
![[H+]3 = sqrt(6.8E-05*(0.001 - 2.24E-04)) = 2.30E-04](InClass03Ans04.gif)
![[H+]4 = sqrt(6.8E-05*(0.001 - 2.30E-04)) = 2.29E-04](InClass03Ans05.gif)
