Lewis Structure
Definition of Terms
Geometry
Ideal Gas Law
Electron Configuration
100

Define paramagnetic

A compound with unpaired electrons

100

if a compound has lone pairs, it will be _____

polar

100

If you have 4 atm, and 15 moles, at 500 K. What would be the volume?

(R=0.0821)

V=153.9375

100

what are all of the letters for the sublevels in electron configuration?

s, p, d, f

200

The more to the right and to the upper side of the periodic table, atomic radius will ________

be smaller, or decrease

200

what is the molecular geometry for H2O

bent

200

What is Charle's law?

V1/T1 = V2/T2

200

How many electrons can you fit in a d level?

10

300

Explain the difference between σ and π bonds

sigma bonds: are stronger, can bond 1s and 1p orbitals, or 2p orbitals from the ends.

pi bonds: not so strong, can bond p orbitals side by side.

300

If there are 3 lone pairs, and 5 electron regions, what will be the molecular geometry?

linear

300

If you have initially 33 L at 260K, at what temperature will you have 15 L?

118.18

300

What is the electron configuration of F?

1s² 2s² 2p⁵

400

What are the units for the constant R

(L * atm) / (mol * K) 

400

name the electron geometry of a compound with 6 electron regions

octahedral

400

What is the ideal gas law formula?

PV=nRT

400

What is the electron configuration (with shortcut) for Sb?

[Kr] 5s² 4d¹⁰ 5p³

500

the periodic table atomic numbers indicate ______ in an element

the number of protons

500

How would you obtain a T-shaped molecule?

With 5 electron regions and 2 lone pairs, or with 6 electron regions and 3 lone pairs.

500

What are the STP values?

1mol, 273K, 22.4 L, and 1atm

500

What are the n, l, and ml values for 4s sublevel

n=4, l=0, ml=0

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