Compound Names
Chemical Formulas
Conversions & Percent Composition
Empirical and Molecular Formulas
Potluck
100

What is the name for the following binary IONIC compounds:

KCl

Li2O

MgCl2

Potassium Chloride

Lithium Oxide

Magnesium Chloride

100

The smallest whole-number ratio of atoms of each element, combined in the simplest unit of a chemical compound is known as a(n):

a. molecular formula

b. formula unit

c. empirical formula

d. molecule

c.  empirical formula

100

In 10.0g of C3H4, how many moles of the compound are present?

0.250 mole

100

Write the empirical formulas to match the following molecular formulas:

C2H6O4

N2O5

Hg2C12

CH3O2

N2O5

HgC6

100

What is your favorite class right now?

Chemistry (of course!).  


p.s. I'm OK if you lie to me for the jeopardy points!


200

In a Stock System name such as iron (III) sulfate, what does the Roman numeral tell us?

It tells us the positive charge on each Fe (iron) atom.

200

What is the formula for dinitrogen pentoxide?

N2O5

200

Compound A has a molar mass of 20 g/mol.   

Compound B has a molar mass of 30 g/mol.


How many moles of compound B are needed to have htee same mass as 6.0 mol of compound A?

4 mol.


200

A certain hydrocarbon has an empirical formula of CH2 and a molar mass of 56.12 g/mol.  What is its molecular formula?

C4H8

200

Assign oxidation numbers to the following compounds:

 - H2SO3

 - Na2CrO4

H +1.  S +4. O -2


Na -1.  Cr +6. O -2

300

What is the stock system name for 

FeO?

SnO2?

Iron (II) oxide

Tin (IV) Oxide

300

What other information do you need in order to determine the molecular formula from the empirical formula of a compound?

a.  the number of moles of the compound

b.  the formula/molecular mass of the compound

c.  the oxidation numbers of all the elements in the compound

d.  the smallest whole-number mole ratio of the atoms in the compound.

b.  the formula mass of the compound.

300

For the compound Al2O3, what is the percent composition of Al?

52.9%

300

A certain ionic compound contains:

0.012 mol sodium

0.012 mol sulfur

0.018 mol oxygen

What is the empirical formula?

Na2S2O3

300

Determine the molar mass of Al2(CrO4)3

401.96 g/mol

400

Give the formula for :

Tetraphosphorus decoxide


Give the prefix name for:

SiO2

P4O10


Silicon Dioxide

400

How does an empirical formula relate to:

a molecular formula and 

a formula unit?

The empirical formula is the simplest ratio of a molecular formula for molecules (covalent bonds).


The empirical formula equals the formula unit for ionic compounds (ionic bonds).

400

In 10.0g of C3H4, how many molecules of the compound are present?

1.50 X 1023 molecules

400

A compound is found to contain

 43.2% Copper

24.1% chlorine

32.7% oxygen

What is the empirical formula?

CuClO3

400

Give the formula for Chromium (III) Sulfate.

The sulfate ion is SO4 with a charge of -2.

Cr2(SO4)3

500

Name the prefixes used for naming molecular compounds for 1-10 atoms.

1: mono

2: di

3: tri

4: tetra

5: penta

6: hexa

7: hepta

8: octa

9: nona

10: deca

500

The explosive TNT has the molecular formula C7H5(NO2)3.

a. How many total atoms are in the molecule?

b. How many oxygen atoms are present in the molecule?

c. In one mole of TNT, how many moles of carbon are there?

a.  21 atoms in each molecule

b.  6 atoms of O in each molecule

c.  7 moles of carbon in 1 mole of TNT

500

Calculate the mass in grams of

 2.5 x 109 H2O molecules.

7.5 x 10-14 g H2O.

500

A gas is found to be 

24.0% carbon and 

76.0% florine by mass.  

The molar mass is 200.04g/mol.   

What is the molecular formula?

C4F8

500

Fill in the blanks below for assigning oxidation numbers:

1.  The oxidation number of any  element is ________

2.  The oxidation number of a monatomic ion equals the _______ of the ion.

3.  The more ___________ element in a binary compound is assigned the number equal to the charge it would take if it were an ion.

4.  Flourine ALWAYS has an oxidation number of _____

5.  Hydrogen is always +1, unless it combines with a ________ and then it is -1.

6.  The sum of the oxidation numbers of all atoms in a neutral compound is ____________

1. 0

2.  charge

3.  electronegative

4.  -1

5.  metal

6.  0.


(Note:   You should also know the rules for oxygen!)