Quantum Theory
Electron Configuration
Periodic Trends
100

What does the Heisenberg Uncertainty Principle tell us?

We cannot simultaneously know the exact position and exact momentum of an electron.

100

Write the ground-state electron configuration for oxygen.

1s² 2s² 2p⁴

100

As you move left → right across a period, atomic radius generally

Decreases

200

An electron is in a 4f orbital.

What are the possible values of n, ℓ, and mℓ?

n = 4

ℓ = 3

mℓ = −3, −2, −1, 0, +1, +2, +3

200

How many unpaired electrons are present in a ground-state nitrogen atom?

3

200

Which has the larger atomic radius: Na or Cl?

Explain why.

 

Na.

Both are in Period 3, but Cl has a greater effective nuclear charge, pulling its electrons closer to the nucleus

300

Which set of quantum numbers is NOT possible?

A. n = 3, ℓ = 2, mℓ = −1
B. n = 2, ℓ = 1, mℓ = 0
C. n = 4, ℓ = 3, mℓ = +2
D. n = 3, ℓ = 3, mℓ = 0

D. n = 3, ℓ = 3, mℓ = 0

300

Write the shorthand electron configuration for Cr and Cu.

Cr: [Ar] 4s¹ 3d⁵

Cu: [Ar] 4s¹ 3d¹⁰

300

Which element has the higher first ionization energy: Mg or Al? 

Why?

Mg.

Although IE generally increases across the period, Al's first electron removed is from a higher-energy 3p orbital, making it easier to remove than Mg's 3s electron.