Equilibrium Constant
Le'Chatlier's Principle
Base/Acids
Calculating pH/Conc
ICE Tables/MISC
100

What is ̇n for the following equation in relating Kc to Kp? N2(g) + 3 H2(g) ? 2 NH3(g)

-2

100

Consider the following reaction at equilibrium.  What effect will reducing the volume of the reaction

mixture have on the system?

Cu (s) + O2 (g) <-> Cu (s) + SO2 (g)

No effect will be observed


100

The stronger the acid, then which of the following is TRUE?

The Weaker the conjugate base 

100

Calculate the hydroxide ion concentration in an aqueous solution with a pH of 9.85 at 25°C

 7.1 × 10-5 M

100

Determine the pH of a .461M C6H5CO2H solution if the Ka of C6H5CO2H is 6.5x10^-5

PH = 2.26

200

Express the equilibrium constant for the following reaction.


2NH3 (g) <-> N2 (g) + 3H2 (g)

Kc = [H2]^3 x [N2] / [Nh3]^2

200

Consider the following reaction at equilibrium. What effect will increasing the temperature have on the system?

Fe3O4 (s) + CO (g) <--> 3FeO (s) + CO2 (g)

deltaH = +35.9kJ

Reaction will shift to the right


200

What is the conjugate base for H2PO4?

HPO4 ^2-

200

Determine the [OH-] concentration of a .116M Ba(OH)2 solution at 25C

.232M

200

Find the percent ionization of a .337M HF solution. The Ka for HF is 3.5x10^-4 

3.2%

300

The reaction below has a Kc value of 61. What is the value of Kp for this reaction at 500 K?

N2 (g) + 3H2 (g) <--> 2Nh3 (g)

3.6x10^-2

300

What effect will removing NO2 from the system?

S02 (g) + NO2 (g) <--> SO3 (g) + NO (g) 

reaction will shift to the left


300

Which of the following acids will have the strongest conjugate base?

A. HI

B. HCLO4

C. HCL

D. HCN

D

300

Determine the Ka of an acid whose 0.294 M solution has a pH of 2.80

Ka = 8.5 × 10-6

300

Which one of the following will form an acidic solution in water? 

A) NH4Cl

 B) KNO3

C) NaF 

D) LiI 

E) None of the above solutions will be acidic

A) NH4Cl

400

Determine the value of Kc for the following reaction if the equilibrium concentrations are as follows: 

[N2]eq = 3.6 M, [O2]eq = 4.1 M, [N2O]eq = 3.3 × 10-18 M.

2.0x10^-37

400

What effect will decreasing the temperature have on the system 

CO2 (g) + 2H20 (l) <--> CH4 (g) + 2O2 (g)

deltaH = +890kj

reaction will shift to the left 

400

Which of the following acids is the WEAKEST? The acid is followed by its Ka value.

A) C6H5CO2H, 6.3 × 10-5

B) HBrO, 2.3 × 10-9

C) HClO, 2.9 × 10-8

D) HC2H3O2, 1.8 × 10-5

E) HIO, 2.3 × 10-11

E) HIO, 2.3 × 10-11

400

Determine Kb for CN- at 25C. The Ka for HCN is 4.9x10^-10

Kb = 2.0x10^-5
400

Determine pH of a .227M C5H5N solution at 25C. The Kb of C5H5N is 1.7x10^-9

PH= 9.29

500

Determine the value of Kp for the following reaction if the equilibrium concentrations are as follows: 

P(NOCl)eq = 0.22 atm, P(NO)eq = 0.10 atm, P(Cl2)eq = 0.081 atm.

1.7x10^-2

500

Consider the following reaction at equilibrium. What effect will increasing the volume have on the system?


2H2S (g) + 3O2 (g) <--> H2O (g) + 2SO2 (g) 

reaction will shift to the left 

500

Which of the following is NOT a conjugate acid-base pair?

A) C2H3O2?/HC2H3O2

B) H3O?/OH?

C) H2SO3/HSO3?

D) NH4 +/NH3

E) All of the above are conjugate acid-base pairs

B. H3O/OH

500

Calculate POH of a solution that contains 3.9x10^-4 M H3O+

POH = 10.59

500

Determine the pH of a solution that is 0.15 M HClO2 (Ka = 1.1 x 10-2) and 0.15 M HClO (Ka = 2.9 × 10-8).

pH = 1.39

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