Definitions
Stoichiometry
Naming Chemical Compounds
Periodic Patterns
Random
100

Polymer

A compound composed of multiple large molecules called monomers.

100

2 mol H2O / 1 mol CO2

6 mol H2O = __ mol CO2

3

100

Br2Se3

Dibromine Triselenide

100

The bottom number on an elements square.

Average Atomic Mass

100

How many dots would carbon have around it if shown in electron dot notation?

4 Dots

200

Dipole

A molecule with both a partial negative and partial positive pole.

200

Avogadro's Number

6.02 x 1023

200

In which compound do you add -ide to the end of the second element?

Both Ionic and Molecular
200

Atomic Radius ____ down the periodic table. (Top to Bottom)

Increases
200

This color on the electromagnetic spectrum has the highest energy?

Violet / Purple

300

Mole

Unit used to quantify matter in a chemical reaction.

300

Formula for Percent Yield

(Actual / Theoretical) x  100

300

Bi3S9

(Provided by Gregory Magana)

Bismuth Sulfide

300

Electronegativity ___ across the periodic table. (Right to Left)

Decreases

300

The other name for energy levels and orbitals in electron configuration.

Shells and Subshells

400

Covalent Bonds

Bonds formed between nonmetals to achieve a full outer shell.

400

Molar Mass of Al3Te

208.54 grams

400

HgAs

(Balanced)

Mercury (III) Arsenide

400

The two elements that need their charges labeled which aren't transition metals.

Tin and Lead

400

For metals, if it takes less energy to remove an electron, then the atom is ___ reactive.

More

500

Intramolecular

Existing or taking place within a molecule.

500

2Se + Br2 -> SeBr2

3 mol Se = ___ particles SeBr2

1.806 x 1024

500

O7At5

Heptoxygen Pentastatide

500

The element with the highest electronegativity.

Flourine

500

The difference in electronegativities of two elements determines the ___ type. (Hint: 7 Actors)

Bond