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BONDING
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BONDING. Bonds Between Atoms Covalent Ionic Molecules Network Metallic.

Dec 15, 2015

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Kelsie Daigh
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Page 1: BONDING. Bonds Between Atoms Covalent Ionic Molecules Network Metallic.

BONDING

Page 2: BONDING. Bonds Between Atoms Covalent Ionic Molecules Network Metallic.

Bonds Between Atoms

Covalent

Ionic

MoleculesNetwork

Metallic

Page 3: BONDING. Bonds Between Atoms Covalent Ionic Molecules Network Metallic.

Metallic Bonding

Page 4: BONDING. Bonds Between Atoms Covalent Ionic Molecules Network Metallic.

Metals lose their outer electrons easily and become cations

Page 5: BONDING. Bonds Between Atoms Covalent Ionic Molecules Network Metallic.
Page 6: BONDING. Bonds Between Atoms Covalent Ionic Molecules Network Metallic.

creating a “sea” of electrons to roam freely around the metal cations.

Page 7: BONDING. Bonds Between Atoms Covalent Ionic Molecules Network Metallic.

The strong electrostatic attraction between cations and roaming electrons explains why:

• metals conduct electricity• are extremely strong and

hard to break• Can be bent and stretched• Have high melting points

Page 8: BONDING. Bonds Between Atoms Covalent Ionic Molecules Network Metallic.

Malleable and Ductile

The mobile electrons will shift to adjust to new arrangements around positive ions. They act as the "glue".

Page 9: BONDING. Bonds Between Atoms Covalent Ionic Molecules Network Metallic.

Ionic Bonding

Page 10: BONDING. Bonds Between Atoms Covalent Ionic Molecules Network Metallic.

Ionic Bonds

- results from the TRANSFER of electrons from a metal to a non-metal

Page 11: BONDING. Bonds Between Atoms Covalent Ionic Molecules Network Metallic.
Page 12: BONDING. Bonds Between Atoms Covalent Ionic Molecules Network Metallic.

Ions are held strongly by electrostatic forces in a 3D lattice

Page 13: BONDING. Bonds Between Atoms Covalent Ionic Molecules Network Metallic.
Page 14: BONDING. Bonds Between Atoms Covalent Ionic Molecules Network Metallic.

Properties

1.Have high melting points because of strong electrostatic attractions between cations and anions

2.Soluble in water

Page 15: BONDING. Bonds Between Atoms Covalent Ionic Molecules Network Metallic.

3. Conducts electricity if dissolved in water (has free ions) but not in solid state

Page 16: BONDING. Bonds Between Atoms Covalent Ionic Molecules Network Metallic.

4. Brittle – similar ions can repel when disturbed

Page 17: BONDING. Bonds Between Atoms Covalent Ionic Molecules Network Metallic.

Covalent Molecules

Page 18: BONDING. Bonds Between Atoms Covalent Ionic Molecules Network Metallic.
Page 19: BONDING. Bonds Between Atoms Covalent Ionic Molecules Network Metallic.

Covalent Molecular

- When 2 or more non-metals SHARE electrons; no charged ions are formed

- Does NOT form large lattices

Page 20: BONDING. Bonds Between Atoms Covalent Ionic Molecules Network Metallic.

- forms small, neutral molecules that are weakly attracted to other molecules

Forces

Page 21: BONDING. Bonds Between Atoms Covalent Ionic Molecules Network Metallic.

Properties:

1.Weak forces between molecules means that it has low melting points.

2.Does not conduct electrical current

Page 22: BONDING. Bonds Between Atoms Covalent Ionic Molecules Network Metallic.

Covalent Network

Page 23: BONDING. Bonds Between Atoms Covalent Ionic Molecules Network Metallic.

Covalent Network Solids

•when either carbon or silicon atoms are bonded covalently to form an infinite 3-D lattice

•network solids are extraordinarily strong

Page 24: BONDING. Bonds Between Atoms Covalent Ionic Molecules Network Metallic.

Diamond

•Each Carbon atom bonds to 4 others

•Strong covalent bonds throughout

•High melting points

•does not conduct electricity.

Page 25: BONDING. Bonds Between Atoms Covalent Ionic Molecules Network Metallic.

Silicon Dioxide: Sand & Quartz

• SiO2