Ionic Compounds
Stoichiometry
Acids and Bases
Equilibrium
100

What is the charge of magnesium in MgCr2O7?

2+
100

What is the molar ratio between N2 and O2 in the following reaction:

3(NH4)2Cr2O7 → 2N2 + 9H2O + 3Cr2O3 + 2NH3 + 32O2

2 mol : 32 mol

(also 1 mol : 16 mol)
100

What are the products in the following Bronsted-Lowry acid base reaction?


HNO3 + HONH2 <-> 

HNO3 + HONH2 <-> NO3- + HONH3+

100

What does "dynamic equilibrium" mean? What does "static equilibrium" mean? Demonstrate this definition using the population of a city as an example.

Dynamic equilibrium - population doesn't change because move in and out at the same rate

Static equilibrium - population doesn't change because no one moves in or out at all
200

What is the charge on the Fe in FeO2?

4+

200

What is the concentration in mM made by dissolving 20.0 mg nitric acid (HNO3) in 500.0 mL of water?

6.36 mM

200

What is the Kb of HAsO42-.

1.0 x 10-7

(Same as Ka2 AND [OH-] and [H+] of neutral water!

200

What is the equilibrium constant expression for the following reaction:

3Na2MnO4(aq) + 2H2O(l) → 2NaMnO4(aq) + MnO2(aq) + 4NaOH(aq)

KC = (NaMnO4)2(MnO2)(NaOH)4/(Na2MnO4)3

300

What is the formula for the compound aluminum(III) phosphide?

AlP

300

What is the limiting reactant when 23.0 mol Cl2 reacts with 40.0 mol Na?

2Na(s)+Cl2(g)→2NaCl(s)

Na

300

Which of these is the strongest acid:

HSO4-

H3PO4

C6H5NH3+

HSO4- - 1.2 x 10-2

H3PO4 - 7.5 x 10-3

C6H5NH3+ - 2.33 x 10-5

300

Considering the following reaction:

3Na2MnO4(aq) + 2H2O(l) → 2NaMnO4(aq) + MnO2(aq) + 4NaOH(aq)

 
How will the equilibrium shift in the following instances:

Water is added

MnO2 is added

NaOH is removed

Water added - Nothing! It's a liquid

MnO2 added - left

NaOH removed - right

400

What is the charge of permanganate (MnO4)?

Example: Silver(III) permanganate is Ag2(MnO4)3

2-

400

Consider the following reaction:

4HNO3 → 2H2O + 4NO2 + O2 

How many molecules of O2 are synthesized when 10.00 mol HNO3 decomposes via this reaction?

1.506 x 1024 molecules

400

What is the pH of a solution made from 10.15 M Boric acid?

x2/10.15 = 5.8 x 10-10

x2 = 5.887 x 10-9

x = 7.67 x 10-5

pH = 4.12

400

Considering the following reaction:

2NH4MnO4(s) → 2MnO2(aq) + N2(aq) + 4H2O(l)

What is the equilibrium constant if, at equilibrium, the following values are measured:

25.0 g NH4MnO4

0.500 M MnO2

0.750 M N2

15.0 mL H20

0.188

500

What is the charge on Sn in Sn2S3?

3+

500

How many g of NO2+ is synthesized when 10.0 g HNO3 decomposes via the following reaction:

63.0 g/mol  46.0 g/mol  62.0 g/mol   18.1 g/mol

__HNO3 <-> __NO2+ + __NO3- + __H2O

3.65 g

500

What is the pH made from a buffer solution of 0.34 M ammonia (NH3) and 0.78 M ammonium (NH4+)?

pKa = -log(1.0x10-14/1.8x10-5) = 9.255

pH = 9.255 + log(0.34/0.78)

pH = 8.89

500

Consider the following reaction:

PH3BCl3(g) <-> PH3(g) + BCl3(g)            Kc = 0.150

Supposing we allow 3.00 M PH3BCl3 to come to equilibrium, what will be the final concentration of each substance?0.6

0.600 M = [PH3] = [BCl3]

2.40 M = [PH3BCl3]

M
e
n
u