Chemical Bonds Overview
Ionic Bonding and Ionic Compounds
Ionic Formulae
Metallic Bonding
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100

What is a chemical bond?

 An electrostatic attraction between two atoms  

100

Which of the following is NOT a property common to ionic compounds?

A. High melting and boiling point 

B. Conducts electricity in the solid state

C. Brittle 

D. None of the above 

B. Conducts electricity in the solid state 

100

Li + F

LiF

100

Why are metallic compounds malleable and ductile, while ionic compounds are brittle?

Since metallic compounds have a sea of electrons, which acts as a glue to hold onto the metal ions.

100

What is the charge of P?

-3

200

What principle of electrostatics describes the forces that cause chemical bonding?  

Opposite charges attract.

200

Why are metallic compounds malleable and ductile, while ionic compounds are brittle?

Since metallic compounds have a sea of electrons, which acts as a glue to hold onto the metal ions  

200
Na + Cl

NaCl

200

List 4 properties of a metallic compound.

1. High melting point 

2. Malleable 

3. Ductile 

4. Good conductor (electrical & thermal)

5. Strong

6. Lustrous (shiny)

200

How are metallic bonds similar to covalent bonds?  How are they different?

Both involve sharing electrons.  However electrons in a covalent bond cannot move freely.

300

What determines the strength of the bond between two atoms?

The amount of charge and the distance between the charged particles

300

True or False.

Atoms lose electrons to form Anions.

False.

300

K + O

K2O

300

Metallic, covalent, or ionic bond? 

Metal atoms ionize and share their valence electrons freely with neighboring atoms in a lattice structure; the sea of electrons hold the positive metal ions together.  

Metallic 

300

Metallic, covalent, or ionic bond? 

Nuclei of nearby atoms attract electrons from the neighboring atom cooperatively so that the electrons are shared to form the bond  

Covalent

400

Why do atoms form chemical bonds?

To have a stable noble gas electron configuration

400

True or False.

You need 2 cations to form an ionic compound.

False

400

Na + OH

NaOH

400

Name 2 types of alloys

Substitutional alloys, where atoms of similar size swap  places in the metal lattice.  E.g. Copper and Zinc make Brass.

Interstitial alloys, where smaller atoms fit into the gaps between larger metal atoms.  Steel (carbon packed between iron atoms) is an example.

400

Metallic, covalent, or ionic bond?

Metals lose valence electrons to a non-metal resulting in opposite charged ions that attract to form a bond.

Ionic

500

Which of the following is NOT a common type of chemical bond found in atoms? 

A. Covalent Bond

B. Ion-dipole Bond

C. Metallic Bond

D. Ionic Bond 

B. Ion-dipole Bond 

500

What determines the strength of ionic compounds?  

The amount of charge and distance between ions 

500

Mg + Cl

MgCl2

500

Why are alloys typically harder than their base metal?

Because different size atoms prevent lattice layers sliding.

500

NH+ P

Hint: NH4 act like a single ion.

(NH4)3P

Chemical name: ammonium phosphide.

Note that NH4 act like a single ion with a +1 charge (NH4+) and phosphide has a -3 charge (P3-).