Exam 1
Exam 2
Exam 3
New Stuff
100

The point on the phase diagram graph where all lines intersect is called the?

Triple Point

100

Which of the following shows the correct equilibrium expression for each equilibrium process? 

a) CaCO3(s) ↔ CaO(s) + CO2(g) 𝐾 = [𝐢𝑂2] 

b) 2H2(g) + O2(g) ↔ 2H2O(l) 𝐾 = [𝐻2𝑂]2/ [𝐻2 ]2[𝑂2] 

c) N2(g) +3H2(g) ↔ 2NH3(g) 𝐾 = [𝑁2 ][𝐻2 ]3/[𝑁𝐻3 ]2

d) N2O4(g) ↔ 2NO2(g) 𝐾 = [𝑁2𝑂4]

a) K = [CO2]

100

Which of the following is TRUE? 

a) The values of Ka1 and Ka2 in a polyprotic acid change depending on acid concentrations. 

b) Nitric acid is a polyprotic acid. 

c) Ka2 is usually larger than Ka1 for polyprotic acids. 

d) HPO4 2βˆ’+H2O H3O + +PO4 3βˆ’ is the expression for the second ionization step of phosphoric acid. 

e) None of the above are true.

e) None of the above are true.
100

This is the opposite of a Voltaic/Galvanic Cell

Electrolytic Cell

200

The solubility of CO2 gas is 0.15 M and it has a Henry's gas law constant of 0.034 M/atm. Find the partial pressure of CO2 gas in torr.

3353 torr

200

Which is named incorrectly?

H2CO3 = carbonic acid

H2Se = hydroselenic acid

IO4 = iodic acid

HBrO = hypobromous acid


IO4 = iodic acid

200

Rank the compounds below in order of increasing pH:

 1.NaI  2.NH4Cl  3.K3PO4  4.HBr  5.CH3NH3NO2 

HINTS: Kb of CH3NH2 is 4.38x10βˆ’4 Ka of HNO2 is 4.0x10βˆ’4     Ka3 for H3PO4 = 4.2x10βˆ’13

4<2<1<5<3

200

Calculate the potential of the concentration cell at 25C:

 Al(s) + Al^3+(aq, 1.15 M) β†’ Al^3+(aq, 0.015 M) + Al(s)

Hint: Use Nernst Equation 

0.037

300

A system has an initial temperature of 69.4 C and an initial pressure of 1 atm. Find the temperature of the system in Celsius given that the change in enthalpy is 17.2 kJ and the final pressure is 514 torr.

48.6 C

300

Calculate the value of Kp for the following reaction:

N2(g) + H2(g) <-> NH3(g) 

Kc = 3.7x108 at 298K

Hint: Kp = Kc(RT)Delta n

6.2x105

300

Balance this redox reaction in acidic solution.

BrO3-+N2H4-> Br-+N2

3N2H2+2BrO3-->3N2+2Br-+6H2O

300

Calculate the maximum amount of work that can be obtained at 25C from an electrochemical cell using Na and MnO2 electrodes. HINT: Write a balanced chemical reaction first.

756 kJ

400

0.145 g of an unknown molecule is added to a 255 mL solution at 25C. Given the osmotic pressure is 24.6 torr find the molar mass of the unknown molecule.

487 g/mol

400

Decomposition of SO2Cl2 is first order in SO2Cl2 and has a rate constant of 1.42x10-4 s-1. How long does it take to reach 35.0% of the initial concentration of SO2Cl2?

2.05 hours

400

Calculate the pH of 0.38 M benzoic acid in 0.24 M sodium benzoate solution. HINT: Ka of benzoic acid is 6.5x10-5.

3.99

400

How long will it take (in hours) to electroplate 11.1 g of copper from a Cu2+ solution using a current of 3.8 A?

2.5 hrs

500

Convert 4 m NaOH to molarity (solution has a density of 1.48 g/mL).

5.1 M

500

Calculate the concentration of H2S gas at equilibrium if a 1.50-L reaction vessel initially contains 3.0 M in NH3, 5.0 M in H2S, and 20. M in NH4HS. At the temperature of the reaction, K = 5.5.

NH3(g) + H2S(g) <-> NH4HS(s)

Hint: You have to use the quadratic equation :(

2.1 M

500

You titrate 100 ml of 0.250 M benzoic acid solution with a 0.450 M NaOH solution. HINT: Ka of benzoic acid is 6.5x10-5. Calculate the pH at the equivalence point.

8.7 

500

You want to produce Na metal by the electrolysis of molten NaCl. You want to produce 1.5 kg of Na in an hour. How many amps of current must be applied?

1749 A