± Determining the pH of a Weak Base and the Percent Ionization of a Weak Acid Un
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Question
± Determining the pH of a Weak Base and the Percent Ionization of a Weak Acid
Unlike strong acids and bases that ionize completely in solution, weak acids or bases partially ionize. The tendency of a weak acid or base to ionize can be quantified in several ways including
Ka or Kb,
pKa or pKb,
and percent ionization*.
*This assumes that species of equal concentrations are being compared as percent ionization is affected by concentration.
Part A
C5H5N+H2OC5H5NH++OH
Express the pH numerically to two decimal places.
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Part B
C6H5COOHC6H5COO+H+
Express your answer to two significant figures and include the appropriate units.
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± Determining the pH of a Weak Base and the Percent Ionization of a Weak Acid
Unlike strong acids and bases that ionize completely in solution, weak acids or bases partially ionize. The tendency of a weak acid or base to ionize can be quantified in several ways including
Ka or Kb,
pKa or pKb,
and percent ionization*.
*This assumes that species of equal concentrations are being compared as percent ionization is affected by concentration.
Part A
Pyridine is a weak base that is used in the manufacture of pesticides and plastic resins. It is also a component of cigarette smoke. Pyridine ionizes in water as follows:C5H5N+H2OC5H5NH++OH
The pKb of pyridine is 8.75. What is the pH of a 0.170 M solution of pyridine? (Assume that the temperature is 25 C.)Express the pH numerically to two decimal places.
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Part B
Benzoic acid is a weak acid that has antimicrobial properties. Its sodium salt, sodium benzoate, is a preservative found in foods, medications, and personal hygiene products. Benzoic acid ionizes in water:C6H5COOHC6H5COO+H+
The pKa of this reaction is 4.2. In a 0.51 M solution of benzoic acid, what percentage of the molecules are ionized?Express your answer to two significant figures and include the appropriate units.
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Explanation / Answer
A)
pH of a Monoprotic Base
This is a base in water so, let the base be C5H5N= "B" and C5H5NH+ = HB+ the protonated base "HB+"
there are free OH- ions so, expect a basic pH
B + H2O <-> HB+ + OH-
The equilibrium Kb:
Kb = [HB+][OH-]/[B]
initially:
[HB+] = 0
[OH-] = 0
[B] = M
the change
[HB+] = x
[OH-] = x
[B] = - x
in equilibrium
[HB+] = 0 + x
[OH-] = 0 + x
[B] = M - x
Now substitute in Kb
Kb = [HB+][OH-]/[B]
Kb = x*x/(M-x)
x^2 + Kbx - M*Kb = 0
x^2 + (10^-8.75)x - (0.170)(10^-8.75) = 0
solve for x
x = 1.738*10^-5
substitute:
[HB+] = 0 + x = 1.738*10^-5M
[OH-] = 0 + x = 1.738*10^-5M
[B] = M - x = 0.170-1.738*10^-5= 0.16998262 M
pH = 14 + pOH = 14 + log(1.738*10^-5) = 9.24
B)
First, assume the acid:
HBenzoic
to be HA, for simplicity, so it will ionize as follows:
HA <-> H+ + A-
where, H+ is the proton and A- the conjugate base, HA is molecular acid
Ka = [H+][A-]/[HA]; by definition
initially
[H+] = 0
[A-] = 0
[HA] = M;
the change
initially
[H+] = + x
[A-] = + x
[HA] = - x
in equilbrirum
[H+] = 0 + x
[A-] = 0 + x
[HA] = M - x
substitute in Ka
Ka = [H+][A-]/[HA]
Ka = x*x/(M-x)
x^2 + Kax - M*Ka = 0
if M = 0.3 M; then
x^2 + (10^-4.2)x - 0.51*(10^-4.2) = 0
solve for x
x =0.00564
substitute
[H+] = 0 + 0.00564= 0.00564M
[A-] = 0 + 0.00564= 0.00564M
[HA] = M - x = 0.51-0.00564= 0.5046 M
pH = -log(H+) = -log(0.00564) = 2.25
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