pH & pOH
Weak Acid & Base Equilibrium
Acid-Base Reactions
Buffers
pH & pKa
100

If the pH is 8.4, is the compound an acid or base?

Base

100

What is the effect of increasing the concentration of a weak base solution on the H+ ion solution?

The H+ ion concentration decreases. 

100

A solution is prepared at 25 degrees celsius in which H30+ is ten times smaller than [OH-] . What is the pH of the solution? 

7.50

100

Property of buffers

Resist changes in pH

100

HCOOH(aq) + H2O(l) <-> H3O(aq) + HCOO-(aq)

Ka = 1.8 x 10-4

Write the expression for the equilibrium constant, Ka, for the reaction.

Ka=[H3O][HCOO]/[HCOOH]

200

What is the pH of a 0.0235 M HCl solution?

What is 1.629?

200

At what time do the solutions fully reach equilibrium?

D

200

2H2O(l) <---> H3O+(aq) + OH-(aq)

At 25 degrees Celsius, the autoionization constant for water, Kw, has a value of 1 X 10-14. At 0 degrees Celsius, the value of Kw is less than 1 X 10-14.

What is true of the pOH?

The pOH of pure water at 0 degrees celsius is greater than 7.0. 

200

Buffer solutions contain high concentrations of which acid-base conjugate types?

weak acid and it's conjugate base and/or weak base and it's conjugate acid. 

200

What is the pH?

9

300

Calculating pH with the hydrogen ion concentration.

pH = -log[H+]

300

_KNO2(aq) + _H2SO4(aq) <-> _K2SO4(aq) + _HNO2(aq)

KNOis a ______ base and H2SO4 is a _______ acid.

weak, strong

300

A 60. mL of a sample of 0.10 M HI(aq) is added to 40. mL of 0.20 M KOH(aq). 

The pH of the resulting solution is in which range of pH (or decimal approximation)?

12 < x < 13

300

Give the Henderson-Hasselbach Equation.

pH= pKa + log (conjugate base / acid)

300

Calculating pKa without a known pH

pKa = -log(Ka)

400

Calculating pOH with the hydroxide ion concentration

pOH = -log[OH-]
400

_KNO2(aq) + _H2SO4(aq) <-> _K2SO4(aq) + _HNO2(aq)

What numbers, in order, balance this chemical equation?

2,1,1,2

400

CH3COOH(aq) + SO32-(aq) <-> CH3COO-(aq) + HSO3-(aq)

Identify the strongest base in the reaction above.

SO32-

400

Why are buffers important in real-life chemical reactions?

They are able to help maintain stable conditions for safe reactions to occur by handling small changes in pH. 

400

Henderson-Hasselbalch Equation

pH = pKa + log([A-]/[HA])

500

What is the pH of a 6.2 x 10-5 M NaOH solution?

What is 9.79?

500

A 0.10 M solution of a weak acid, HA, has a pH of 5.0. What is the value of Ka for the acid?

What is 1 X 10-9?

500

Which of the following is the balanced net ionic equation for the reaction between HF(aq) and KOH(aq)?

HF(aq) + OH-(aq) ---> F-(aq) + H2O(l)

500

Determine the volume, in mL, of 0.100 M NaOH(aq) the student should add to 100 mL of 0.100 M HNO2(aq) to make a buffer solution with a pH of 3.40.

50.0 mL

500

HCOOH(aq) + H2O(l) <-> H3O(aq) + HCOO-(aq)

Ka = 1.8 x 10-4

Calculate the pH of a 0.25 M solution of HCOOH.

2.17