Bonding and Structure
VSEPR
Lewis Diagrams
Metals, Alloys, and Ionic Solids
Hybridization and Formal Charge
100

What is the Electronegativity difference of Nonpolar, Polar, and Ionic atoms?

Nonpolar : <0.5    Polar : 0.5-1.7    Ionic : >1.7 

100

What molecular shape does COmake? 

Linear 

100

Draw Lewis diagram for NCl3

Look at slideshow for model (slide 2) 


100

Identify which is pure, substitutional, and interstitial

Look at slideshow (slide 6)

100

How many electron domains correspond to sp, sp2,and sp3? Which is more stable a structure with 0, -1 or +1 formal charge?

sp - 2  

sp2 - 3  

sp3 - 4 

0 formal charge

200

Which atom, N or O has a greater electronegativity? Justify

O because it has more protons, smaller radius resulting in more shielding

200

What would be the bond angle for the following molecules? 

Tetrahedral, Octahedral, and Trigonal Planar

Tetrahedral - 109.5

Octahedral - 90

Trigonal Planar - 120

200

Draw Lewis diagram for C3H8O

Look at slideshow for model (slide 3) 

200

What is an alloy?

Mixture of two or more elements. One being a metal

200

Compare formal charges of C and O in CO2

C = 4-6=-2

O = 6-7=-1

300

Why does CaF2 have a higher lattice energy than NaCl?

Due to higher charges on its ions and a smaller intermolecular distance between ions.

300

A molecular with 5 electron domains and no lone pairs has what geometry? 

Trigonal bipyramidal

300

Why is 0represented with a double bond and not a single bond?

A double bond gives both oxygen atoms full octets
300

Why are metals good conductors of electricity?

Delocalized electrons can move freely

300

Draw C2H4O2 and identify the formal charges on O atoms 

O with double bond = 0 

O with single bond = 0  

400

A bond between two atoms has an electronegativity differerence of 0.8. What is the polarity? 

Polar Covalent 

400

What is the molecular geometry and bond angle on BrF5?

Square pyramidal and 90 degrees

400

Draw NH4and identify how many electrons it has

Look at slideshow for model (slide 4) 

8 valence electrons

400

Which compounds would be stronger, NaCl or MgO?

MgO because ions are smaller and held closer together

400

Draw the resonance structures for NO3-

Look at slideshow (slide 7)

500

Two compounds have the same charge but compound A has a higher lattice energy. Why is this?

Compound A has a smaller Ionic radii leading to shorter distance between ions. 

500

Explain why the actual bond angle for H20 is smaller than the tetrahedral angle? 

The two lone pairs on oxygen create stronger repulsion, making the bond angle a little smaller than 109.5. Approximately 104.5

500

Draw CH2Cl2 and identify molecular geometry and bond angle

Look at slideshow for model (slide 5) 

Tetrahedral and approximately 109.5  

500

Ionic solids do not conduct electricity, but do when dissolved in water. Why is this?

Ionic solids do not have free movement of ions, when dissolved ion are free moving.

500

Draw H2SOand identify formal charge and hybridization on central atom

Look at slideshow (slide 8)

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