Atomic Theories
Atomic Structure
Electron Configurations
Geometry
Chemical Bonding
100

What is a photon?

A quantum of light energy

100

What type of shape is an p orbital?

dumbbell-shape

100

What does the Aufbau principle state?

Electrons must be filled in the lower-energy atomic orbitals before being filled in higher-energy ones.

100

What does the acronym VSEPR stand for?

Valence Shell Electron Pair Repulsion

100

List the following bonds from weakest to strongest:

London, ionic, ion-dipole, hydrogen bonding, dipole-dipole

London, dipole-dipole, hydrogen bonding, ion-dipole, ionic
200

True or False: Bohr performed the Gold Foil experiment.

False, Rutherford performed the Gold Foil experiment

200

What are the four quantum numbers?

principle quantum number (n)

orbital angular momentum quantum number (l)

magnetic quantum number (ml)

electron spin quantum number (ms)

200

True or False: Hund's rule states that no two electrons can have the same 4 electronic quantum numbers.

False, Hund's rule states that every orbital in an atom is singly occupied before an any orbital is double occupied.

200

Which VSEPR shape has the formula, AX4E?

See-saw

200

Which liquid, propane or ethanol, would have the greatest surface tension? Explain.

Ethanol because of its greater intermolecular forces.

300

List the 5 atomic models, from oldest to newest, that were discussed in class.

Dalton, Thomson, Rutherford, Bohr, Shrodinger

300

True or False: an orbital is a region of space around the nucleus where an electron is always found.

False: an orbital is a region of space around the nucleus where an electron is likely to be found.

300

What is the electron configuration of a chlorine atom in its lowest energy state?

1s22s22p63s23p5

300

Which of the following molecules or ions has a trigonal planar shape?

phosphorus trifluoride, nitrate ion, ammonia, sulfate ion

Nitrate ion

300

Calculate the electronegative difference of a S-O bond. Is this type of bond polar, non-polar, or ionic?

~0.9 and polar

400

True or False: a photon is released when an electron "drops" to a lower energy-level.

True

400

How many possible values of ml are there for l = 2? What are they?

(-2, -1, 0, +1, +2)

400

What does isoelectronic mean? Give an example of two species that are isoelectronic.

Two species (atoms/ions) have the same electronic structure or same number of electrons.

Answers may vary: Ne atom and Mg+2 ion

400

When are pi bonds created?

Pi bonds are created from side-by-side overlap of atomic orbitals.

400

How would you compare the properties of triple bonds from double bonds?

Triple bonds are shorter and stronger than double bonds

500

What experimental evidence led Bohr to believe that electrons can possess only specific amounts of energy?

Emission spectrum

500

What is the highest energy-sublevel of a gold atom?

5d

500

What is the electron configuration of a calcium ion in its lowest energy state?

Calcium ion will have a +2 charge (18 electrons). 1s22s22p63s23p6

500

What type of hybridization does the central sulphur atom have in SO2?

sp2 hybridization

500

True or False: all polar molecules must have polar bonds and all non-polar molecules must have non-polar bonds.

False. Non-polar molecules that are symmetrical can have polar bonds only. The dipoles of these polar bonds; however, can cancel out, resulting in a non-polar molecule (ex. CCl4)

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