Lesson 1.3.1
1.3.1 Quantum shells, sub-shells and orbitals Quiz: Pearson Edexcel Chemistry, Unit 1
20 questions
In partnership with Revision Ninja
Lesson 1.3.1, Quantum shells, sub-shells and orbitals: 20 multiple choice questions for the Pearson Edexcel Chemistry (9CH0), Unit 1: Atomic Structure and the Periodic Table, written with Revision Ninja.
Host it live on the board and students join with a game code on their own devices, or revise alone with Free Play. The answers are revealed in the game.
The 20 questions
-
What is the maximum number of electrons that the first quantum shell can hold?
- 18
- 2
- 4
- 8
-
How many electrons can a p sub-shell hold?
- 10
- 3
- 6
- 2
-
What is the shape of an s orbital?
- Planar ring
- Spherical
- Cloverleaf
- Dumbbell
-
What is the shape of a p orbital?
- Dumbbell
- Linear chain
- Tetrahedral
- Spherical
-
What is the maximum number of electrons in the second quantum shell?
- 4
- 2
- 8
- 18
-
Which sub-shell is in the third shell and holds up to 10 electrons?
- 3p
- 3s
- 4s
- 3d
-
How many orbitals are there in a p sub-shell?
- 5
- 6
- 1
- 3
-
Which statement about an orbital is correct?
- It is a fixed-size shell around the nucleus that holds the full number of electrons allowed for that shell
- It holds up to six electrons with paired spins arranged in a single region around the nucleus of the atom
- It holds at most two electrons, which must have opposite spins
- It holds at most two electrons, which must have the same spin direction as each other in the orbital
-
In which shell does the d sub-shell first appear?
- Shell 3
- Shell 4
- Shell 1
- Shell 2
-
How many electrons can the fourth quantum shell hold in total?
- 18
- 8
- 24
- 32
-
Which sub-shells make up the second quantum shell?
- 2s, 2p, 2d and 2f
- 2p and 2d only
- 2s, 2p and 2d
- 2s and 2p only
-
Atomic emission spectra show discrete lines. What does this suggest about electrons?
- They can have any energy within a shell, so the emitted light would be continuous rather than made of discrete lines
- They occupy fixed energy levels, which are the quantum shells
- They are concentrated at a single point in the nucleus, where the energy is greatest of all in the atom
- They move freely across the whole atom, so energy is absorbed and released at random values with no pattern
-
How many electrons can the 3s and 3p sub-shells hold together?
- 6
- 18
- 10
- 8
-
How many orbitals are there in the third quantum shell?
- 6
- 18
- 9
- 3
-
Which electron in an atom has the lowest energy?
- A 3d electron, in the third shell, which lies at a higher energy level than any electron in the first shell
- A 1s electron, in the first shell closest to the nucleus
- A 2p electron, in the second shell, which is further from the nucleus and more shielded than the first shell
- A 4s electron, in the outer shell, which is the furthest electron from the nucleus of the whole atom
-
Explain why a 2s electron has lower energy than a 2p electron in the same shell.
- 2p electrons carry a larger charge than 2s electrons, which increases their attraction to the nucleus in the atom
- 2s orbitals penetrate closer to the nucleus, so they experience less shielding and are lower in energy
- 2p orbitals are closer to the nucleus than 2s orbitals, so they experience a smaller shielding effect from the inner electrons
- 2s electrons have a greater spin than 2p electrons, which makes them more stable and lower in energy overall
-
Why can the 4s sub-shell fill before the 3d sub-shell in potassium and calcium?
- The 4s sub-shell is lower in energy than 3d for these atoms, so it fills first
- The 3d sub-shell is always in a lower quantum shell than the 4s sub-shell, so it should be filled first in every atom
- The 3d orbitals are closer to the nucleus than the 4s orbitals, so they lie at a higher energy and fill later
- The 4s sub-shell holds more electrons than the 3d sub-shell in the same atom, so it fills first to hold them
-
Which statement about a full p sub-shell is correct?
- It contains 6 electrons spread across 6 separate orbitals, with one electron in each of the orbitals
- It contains 3 electrons in 3 orbitals, with one electron of each spin direction in each of the orbitals
- It contains 6 electrons in 3 orbitals, with 2 electrons in each orbital
- It contains 2 electrons in a single orbital, so the other two orbitals in the sub-shell stay empty
-
Which statement about quantum shells is correct?
- Shell n holds 2n electrons, so the second shell holds four electrons and the third shell holds six electrons
- Shells are at fixed energy levels, and shell n contains n sub-shell types, up to shell 3
- Every shell holds 8 electrons regardless of its number, which is why the periodic table has rows of eight elements
- Shell n contains exactly n orbitals, so the first shell has one orbital and the second shell has two orbitals
-
What is the total number of electrons in a full third quantum shell, and which sub-shells make it up?
- 18 electrons in the 3s, 3p and 3d sub-shells
- 10 electrons, all in the 3d sub-shell
- 32 electrons in the 3s, 3p, 3d and 3f sub-shells
- 8 electrons in the 3s and 3p sub-shells only
Related quizzes
- Sub-atomic particles, isotopes and relative masses Quiz · 1.1.1 · 20 questions
- Relative masses and mass spectrometry Quiz · 1.1.2 · 20 questions
- First and successive ionisation energies Quiz · 1.2.1 · 20 questions
- Periodicity across periods 2 and 3 Quiz · 1.2.2 · 20 questions
- Electronic configurations and s, p, d blocks Quiz · 1.3.2 · 20 questions
- Dynamic equilibrium and the equilibrium constant Kc Quiz · 10.1.1 · 20 questions
- Kp and partial pressures Quiz · 11.1.1 · 20 questions
- Brønsted-Lowry acids, bases and conjugate pairs Quiz · 12.1.1 · 20 questions
- Lattice energy and Born-Haber cycles Quiz · 13A.1 · 20 questions
- Standard electrode potentials and the hydrogen electrode Quiz · 14.1.1 · 20 questions