pH, pOH, Kw
Weak Acid/Base Equilibrium, ICE tables
Titrations, pH curves
Buffers
Molecular Structure, Solubility
100

What is the pH of 1.0 x 10^-3 M HCl?

3

100

What is pKa if Ka = 1.0 x 10^-5?

5

100

Equivalence pH of strong acid/base titration:

7

100

When pH = pKa, ratio of acid to base = ____

1

100

HF weak acid cuz:
A) strong bond
B) weak bond
C) ionic
D) metallic

A) strong bond

200

A solution has pOH = 5.25. What is [H+]?

5.6 x 10^-9

200

Calculate [H+] for 0.050 M acid with Ka = 2.0 x 10^-5

1.0 x 10^-3

200

A 25.0 mL sample of 0.100 M HCl is titrated with 0.100 M NaOH. What volume of NaOH is required to reach the equivalence point?

25.0 mL

200

[A-]/[HA] = 5. Then pH ____ pKa

a. Higher

b. Lower 

c. Equal to

a) higher

200

Strongest acid:
A) HCl
B) HF
C) HBr
D) HI

D) HI

300

A 0.010 M HCl solution is diluted to 5× its volume. What is final pH?

2.70

300

A base has Kb = 1 x 10^-5. Find pH of 0.10 M solution

11

300

A 25.0 mL sample of 0.100 M HCl is titrated with 40.0 mL of 0.100 M NaOH. Final pH?

12.36

300

A 0.100 M weak acid has Ka = 2.5 x 10^-5. What is the pH?

2.80

300

The Ksp of AgCl is 1.8 x 10^-10. What is the molar solubility of AgCl in pure water?

1.3 x 10^-5

400

What is the pH of a solution where [OH-] = 3.2 x 10^-6 M?

8.50

400

Given pH = 3.00 and concentration = 0.10 M, find Ka

1.0 x 10^-5

400

25.0 mL of 0.100 M acetic acid is titrated with 0.100 M NaOH. Ka = 1.8 x 10^-5. What is the pH at the equivalence point?

8.72

400

A buffer contains 0.250 M CH₃COOH and 0.100 M CH₃COO-. Ka = 1.8 x 10^-5. What is pH?

4.34

400

The Ksp of CaF2 is 3.9 x 10^-11. What is the molar solubility in pure water?

2.1 x 10^-4

500

A solution has [H+] = 2.5 x 10^-5 M. What is pOH?

9.60

500

A weak acid is 2% ionized at 0.20 M. Find Ka

8.0 x 10^-5

500

A 50.0 mL sample of 0.200 M HF is titrated with 0.100 M NaOH. Ka = 1.0 x 10^-5. What is the pH after 30.0 mL of NaOH is added?

4.63

500

A buffer solution is prepared by mixing 0.300 mol of acetic acid (CH₃COOH) and 0.200 mol of sodium acetate (CH₃COO-), and there is 1.00 L of solution. The Ka of acetic acid is 1.8 x 10^-5. Then, 0.050 mol of HCl is added to the buffer. What is the final pH of the solution?

4.37

500

The Ksp of PbCl2 is 1.7 x 10^-5. What is solubility in 0.10 M Cl-?

1.7 x 10^-3

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