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Unit 5: Ionic Bonding. 3s 2 3p 6 2s22s2 18-argon (Ar) 17-chlorine (Cl) 2s12s1 10-neon (Ne)...

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Unit 5 : Ionic Bonding
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Page 1: Unit 5: Ionic Bonding. 3s 2 3p 6 2s22s2 18-argon (Ar) 17-chlorine (Cl) 2s12s1 10-neon (Ne) 9-fluorine (F) Valence Electrons: e – ’s in highest energy.

Unit 5: Ionic Bonding

Page 2: Unit 5: Ionic Bonding. 3s 2 3p 6 2s22s2 18-argon (Ar) 17-chlorine (Cl) 2s12s1 10-neon (Ne) 9-fluorine (F) Valence Electrons: e – ’s in highest energy.

3s2 3p6

2s2

18-argon (Ar)

17-chlorine (Cl)

2s1

10-neon (Ne)

9-fluorine (F)

Valence Electrons:•e–’s in highest energy

level

11-sodium (Na)

3-lithium (Li)

4-beryllium (Be)

12-magnesium (Mg)

3s1 3s2 3s2 3p5

2s2 2p5 2s2 2p6

Group # =

Valence #•determine chemical properties

•involved in bonding

Page 3: Unit 5: Ionic Bonding. 3s 2 3p 6 2s22s2 18-argon (Ar) 17-chlorine (Cl) 2s12s1 10-neon (Ne) 9-fluorine (F) Valence Electrons: e – ’s in highest energy.

SNa Al Ar

Lewis dot diagram:valence e–’s as dots

Mg ClPSi

1 2 13 14 15 16 17 18

The Octet Rule• atoms form bonds to

have 8 valence e–

• full outer level• like noble gases

Ne

lose e–’s gain e–’s

Li Be B C N O F Ne

Page 4: Unit 5: Ionic Bonding. 3s 2 3p 6 2s22s2 18-argon (Ar) 17-chlorine (Cl) 2s12s1 10-neon (Ne) 9-fluorine (F) Valence Electrons: e – ’s in highest energy.

Metals form (+) ions:e–’s lost for octetpositive cations

Nonmetals form (–) ions:e–’s gained for octetnegative anions

Ions

Page 5: Unit 5: Ionic Bonding. 3s 2 3p 6 2s22s2 18-argon (Ar) 17-chlorine (Cl) 2s12s1 10-neon (Ne) 9-fluorine (F) Valence Electrons: e – ’s in highest energy.

Group 1 1+ charged ions

Mg

Na

[Mg]2+

[Na]+

Group 22+ charged ions

Al [Al]3+

Group 3A3+ charged ions

Page 6: Unit 5: Ionic Bonding. 3s 2 3p 6 2s22s2 18-argon (Ar) 17-chlorine (Cl) 2s12s1 10-neon (Ne) 9-fluorine (F) Valence Electrons: e – ’s in highest energy.

1+ 2+ 3+

Page 7: Unit 5: Ionic Bonding. 3s 2 3p 6 2s22s2 18-argon (Ar) 17-chlorine (Cl) 2s12s1 10-neon (Ne) 9-fluorine (F) Valence Electrons: e – ’s in highest energy.

Group 6A 2– charged ions

Group 5A 3– charged ions

Group 7A 1– charged ions

F F

O O

N N

2–

3–

anions names end in -ide

Page 8: Unit 5: Ionic Bonding. 3s 2 3p 6 2s22s2 18-argon (Ar) 17-chlorine (Cl) 2s12s1 10-neon (Ne) 9-fluorine (F) Valence Electrons: e – ’s in highest energy.

AlCl3

Cl–[Na]+Lewis dot

diagrams

Page 9: Unit 5: Ionic Bonding. 3s 2 3p 6 2s22s2 18-argon (Ar) 17-chlorine (Cl) 2s12s1 10-neon (Ne) 9-fluorine (F) Valence Electrons: e – ’s in highest energy.

1+ 2+ 3+ 3– 2– 1–

charges vary but

always

+

transitionmetals

Page 10: Unit 5: Ionic Bonding. 3s 2 3p 6 2s22s2 18-argon (Ar) 17-chlorine (Cl) 2s12s1 10-neon (Ne) 9-fluorine (F) Valence Electrons: e – ’s in highest energy.

Write the names and symbols for the following ions: (remember the charges)

1. Iodine gains __ e– to form ____

2. Calcium loses __ e– to form ____

3. Sulfur ______ __ e– to form ____

4. Potassium ______ __ e– to form ____

1 I–

2 Ca2+

2 S2–gains

1 K+loses

Page 11: Unit 5: Ionic Bonding. 3s 2 3p 6 2s22s2 18-argon (Ar) 17-chlorine (Cl) 2s12s1 10-neon (Ne) 9-fluorine (F) Valence Electrons: e – ’s in highest energy.

1. How does oxygen display the octet rule when forming an ion?

A. loses 2 e–’s for a –2 charged anion

B. loses 6 e–’s for a +6 charged cation

C. gains 2 e–’s for a –2 charged anion

D. gains 2 e–’s for a +2 charged cation

Quick Quiz!

Page 12: Unit 5: Ionic Bonding. 3s 2 3p 6 2s22s2 18-argon (Ar) 17-chlorine (Cl) 2s12s1 10-neon (Ne) 9-fluorine (F) Valence Electrons: e – ’s in highest energy.

2. Atoms that tend to gain a noble gas electron configuration by losing valence electrons are…

A. metals

B. nonmetals

C. halogens

D. anions

Quick Quiz.

Page 13: Unit 5: Ionic Bonding. 3s 2 3p 6 2s22s2 18-argon (Ar) 17-chlorine (Cl) 2s12s1 10-neon (Ne) 9-fluorine (F) Valence Electrons: e – ’s in highest energy.

3. When a bromine atom forms an anion, it does so by…

A. losing two electrons.

B. gaining two electrons.

C. losing one electron.

D. gaining one electron

Quick Quiz.

Page 14: Unit 5: Ionic Bonding. 3s 2 3p 6 2s22s2 18-argon (Ar) 17-chlorine (Cl) 2s12s1 10-neon (Ne) 9-fluorine (F) Valence Electrons: e – ’s in highest energy.

4. Write the name and the symbol of the ion formed from a nitrogen atom.

A. nitrogen ion, N3+

B. nitride, N–

C. nitride, N3–

D. nitrogen ion, N5–

Quick Quiz.


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