CHEM162L-Homework 8- measuring the pH during titration This problem set will hel
ID: 546484 • Letter: C
Question
CHEM162L-Homework 8- measuring the pH during titration This problem set will help you understand the three different scenarios that can happen during a (Weak Acid + Strong Base) titration to help you answer the last question on the post lab. I. In a beaker, there is 40 mL of 0.1M weak acid, HA (Ka 2.5 x 10). Calculate the p of this acid! Then, calculate the pH after (a) 25 mL. (b) 40 mL and (c) 45 mL of O.IM NaOH have been added Original pH of the weak acid: HAH+A C: E: Ka-9.5/o solve x = 5. pH-4,30 Comments: The following NaOH additions will demonstrate 3 scenarios that can happen at equilbrium. PAY ATTENTION to these scenarios! (a). 25 mL of 0.1 M NaOH added Step 1. What is the total volume? Hint: Vol of HA+NaOH. Use MIVI M2V2 Step 2, Use the total vol and calculate new concentrations [OH]- [HA] = Step 3. Express the neutralization reaction HA +OH' - A. +11,0 what species present? Notice this 1" scenario: at equilibrium both [AJ and [HA] are present, hence we can use Henderson-Hasselbach to find pH! Step 4. Calculate pH based on the scenarioExplanation / Answer
1)
concentration of acid = 0.10 M
Ka = 2.5 x 10^-8
HA --------------> H+ + A-
0.10 0 0 --------> I
- x x x -----------> C
0.10 - x x x -----------> E
Ka = x^2 / 0.10 - x
2.5 x 10^-8 = x^2 / 0.10 - x
x = 5.01 x 10^-5
[H+] = 5.01 x 10^-5 M
pH = -log (5.01 x 10^-5 )
pH = 4.30
a)
millimoles of acid = 40 x 0.1 = 4
millimoles of base = 25 x 0.1 = 2.5
HA + NaOH ----------> NaA + H2O
4 2.5 0 0
1.5 0 2.5
pH = pKa + log [salt / acid]
= 7.60 + log [2.5 / 1.5]
pH = 7.82
b) 40 mL NaOH :
millimoles of base = 40 x 0.1 = 4
HA + NaOH ----------> NaA + H2O
4 4 0 0
0 0 4
here salt remains. this is equivalence point.
salt concentration = 4 / 40 + 40 = 0.05 M
pH = 7 + 1/2 (pKa + log C)
= 7 + 1/2 (7.60 + log 0.05)
pH = 10.15
d)
millimoles of base = 45 x 0.1 = 4.5
strong base NaOH remains = 0.5
concentration = 0.5 / 40 + 45 = 5.88 x 10^-3 M
pOH = -log (5.88 x 10^-3) = 2.23
pH = 11.77