pH Problems
Buffer & Titration Problems
Acids
Bases
Equations
100

Determine the pH of a 0.30 M solution of HF (Ka = 6.8 × 10⁻⁴)

pH= 1.86

100

What is the effective pH range of a buffer?

pKa +/- 1
100

What is the Bronsted-Lowry definition of an acid?

Acids donate H+ ions

100

What is the Bronsted-Lowry definition of a base?

Substances that accept H+ protons.

100

How do you find Kb if given Ka?

Kb = Kw / Ka

200

Determine the pH of a 0.65 M solution of HCO₂K. The value of Ka for HCOOH is 1.8 × 10⁻⁴.

pH=8.78

200

Determine the pH of a buffer that is 0.95 M HBrO and 0.68 M KBrO. The value of pKa for HBrO is 8.68.

pH=8.53

200

Do acids have a high pH or a low pH?

Low pH

200

How do you know that NO2- is a weak base?

NO2- has the ability to accept a proton and form the conjugate acid HNO2 making it a base.

200

What is the Henderson-Hasselbalch equation?

pH=pKa + log(base/acid)

300

Aspirin (acetylsalicylic acid, HC₉H₇O₄) has a value of Ka equal to 3.3 × 10⁻⁴. What is the pH after 652 mg of aspirin is dissolved in a solution of 237 mL?

pH=2.68

300

A buffer contains significant amounts of  CH3COOH and CH3COO-. Write 2 equations for how this buffer would neutralize added HBr and NaOH. 

CH3COOH(aq) + NaOH(aq) →  NaCH3COO(aq) + H2O(l)

CH3COO-(aq) + HBr(aq) →  CH3COOH(aq) + Br-

300

If an acid completely dissociates, is it strong or weak?

Strong
300

Which of the following is a Bronsted-Lowry base?

a) H2CO3

b) HF

c) C9H7N

d) NH4+

c) C9H7N

300

How do you find pKa if given Ka?

pKa = -log(Ka)

400

What is the pH of a 0.320 M solution of Ca(NO₂)₂ (Ka of HNO₂ is 4.5 × 10⁻⁴)?

8.58

400

Determine the resulting pH when 0.0015 mol of solid Ba(OH)₂ is added to a 0.350 L buffer containing 0.110 M weak acid, HA, and 0.220 M of its conjugate base, A⁻. The value of Ka for HA is 3.2 × 10⁻⁹.

pH = 8.85

400

For oxyacids, the more electronegative the Y is, the ___ the acid (weaker or stronger).

Y--O--H


Stronger
400

Which of the following is a weak base?

a) NH3

b) C6H5COOH

c) HCN

d) Ba(OH)2

a) NH3

400

How do you find pKa if given Kb?

Divide Kw by Kb to solve for Ka then do -log(Ka).

500

A diprotic acid, H₂A, has Ka1 = 3.4 × 10⁻⁴ and Ka2 = 6.7 × 10⁻⁹.  What is the pH of a 0.18 M solution of H₂A?

pH=2.11

500

Calculate the pH when 60.0 mL of 0.200 M HBr is mixed with 30.0 mL of 0.400 M CH₃NH₂ (Kb = 4.4 × 10⁻⁴).

pH=5.76

500

Which of the following is a weak acid and why?

a) KClO

b) HBrO

c) HClO4

d) CH3NH2

b) HBrO 

It is an acid because it donates an Hproton unlike CH3NH2 and KClO which accept protons. It is weak because it only partially dissociates unlike HClO4 which fully dissociates.

500

Would HC9H7O4 function as an acid or base? If acid, what is the conjugate base? If base, what is the conjugate acid?

HC9H7O4 is a weak acid. Its conjugate base is C9H7O4-.

500

How do you validate x is small when using the Henderson-Hasselbalch equation?

After you solve for the pH, solve for [H3O+] concentration by raising 10 to the power of (-pH). Divide [H3O+] by its coefficient in the chemical equation to find x. Then do 

(x/concentration) x 100. x is small is valid if the answer is less than 5%.