Lesson 5.6.3
5.6.3 Atomic line spectra and photon absorption and emission Quiz: Pearson Edexcel Physics, Unit 5
20 questions
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Lesson 5.6.3, Atomic line spectra and photon absorption and emission: 20 multiple choice questions for the Pearson Edexcel Physics (9PH0), Unit 5: Waves and Particle Nature of Light, written with Revision Ninja.
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The 20 questions
-
Why does a gas discharge lamp produce a line spectrum?
- The gas absorbs all wavelengths except those of the lamp
- Its atoms are too hot to emit a continuous spectrum
- Its electrons are free and can emit any energy
- Its atoms emit photons only at fixed energies, from transitions between discrete energy levels
-
What happens when an electron in an atom falls from a higher energy level to a lower one?
- It is ejected from the atom as a photoelectron
- It gains energy from a neighbouring atom
- It absorbs a photon of energy equal to the difference
- It emits a photon whose energy equals the difference between the two levels
-
When does an atom absorb a photon?
- When the photon energy can take any value
- When the photon energy is less than the lowest level
- When the photon energy equals the difference between two of its energy levels
- When the photon energy is zero
-
What is the ground state of an atom?
- The level from which the electron has been ionised
- The highest energy level that the electron can occupy
- The energy level at zero energy in every atom
- The lowest energy level, in which the electron is most tightly bound
-
Which equation gives the frequency of a photon emitted in a transition with energy change delta E?
- f = h/delta E
- f = delta E/h
- f = delta E/(2h)
- f = delta E x h
-
What is the ionisation energy of an atom?
- The energy of the highest level in the atom
- The energy of the work function of the metal surface
- The energy needed to excite an electron to the next level
- The minimum energy needed to remove an electron from its ground state
-
A transition in hydrogen goes from n = 2 to n = 1, with energy levels -3.4 eV and -13.6 eV. What is the frequency of the photon emitted? Take 1 eV = 1.6 x 10^-19 J and h = 6.63 x 10^-34 J s.
- 1.6 x 10^15 Hz
- 2.5 x 10^15 Hz
- 4.1 x 10^15 Hz
- 6.2 x 10^14 Hz
-
A transition releases a photon with energy 10.2 eV. What is the wavelength of this photon? Use hc = 1240 eV nm.
- 1216 nm
- 410 nm
- 12.2 nm
- 122 nm
-
An electron transition releases a photon with energy 1.9 eV. What is the approximate wavelength of this photon? Use hc = 1240 eV nm.
- About 650 nm
- About 2.5 micrometres
- About 130 nm
- About 340 nm
-
An atom has ground state energy -13.6 eV and first excited level -3.4 eV. Which photon energy can be absorbed by an atom in the ground state?
- 5.0 eV
- 3.0 eV
- 8.0 eV
- 10.2 eV
-
An electron in a level with energy -3.4 eV absorbs a photon of energy 4.0 eV, with ground state -13.6 eV. What happens?
- The electron moves to a level at -1.5 eV
- The electron drops to the ground state and emits energy
- The photon is not absorbed
- The atom is ionised, and the electron leaves with 0.6 eV of kinetic energy
-
A photon of frequency 4.6 x 10^14 Hz is absorbed in a transition. What is the energy of the transition? Take h = 6.63 x 10^-34 J s and 1 eV = 1.6 x 10^-19 J.
- 0.29 eV
- 3.0 eV
- 1.9 eV
- 7.3 eV
-
An atom has three energy levels. How many different transitions can an electron make that emit a photon, if it may drop from any higher level to any lower level?
- 2
- 6
- 4
- 3
-
An atom has levels at -13.6 eV, -3.4 eV and -1.5 eV. Which transition emits the photon of highest frequency?
- From -1.5 eV down to -3.4 eV
- The transitions from -1.5 eV to -3.4 eV and from -3.4 eV to -13.6 eV are equal
- From -3.4 eV down to -13.6 eV
- From -1.5 eV down to -13.6 eV
-
What is an energy of 12.1 eV in joules? Take 1 eV = 1.6 x 10^-19 J.
- 7.6 x 10^-20 J
- 1.9 x 10^-18 J
- 1.2 x 10^-17 J
- 1.9 x 10^-19 J
-
A student says that a line spectrum shows that electrons in an atom can have any energy. Which evaluation is correct?
- Correct, because a line spectrum shows a continuous range of energies
- Incorrect, because line spectra show discrete energy levels, so only certain transition energies appear
- Correct, because each line corresponds to a continuous band of energies
- Incorrect, because line spectra carry no information about energy
-
Why does a hydrogen atom emit only certain photon energies rather than a continuous range?
- Electrons lose energy continuously but in fixed steps of wavelength
- Photons are emitted only at integer multiples of the frequency of visible light
- Electron energy levels in an atom are quantised, so transitions occur only between fixed levels
- Hydrogen atoms emit only in the visible region of the spectrum
-
An electron drops from the level at -1.5 eV to the level at -13.6 eV. The atom is hydrogen-like with these levels. What is the wavelength of the emitted photon? Use hc = 1240 eV nm.
- About 103 nm
- About 122 nm
- About 1.0 micrometres
- About 656 nm
-
Why does an atom absorb only some photons from a continuous white-light source?
- Atoms absorb only photons whose energy is exactly zero
- Atoms absorb every photon energy equally, but emit only at matched energies
- Only photons whose energy matches a permitted transition can be absorbed; the others pass through unchanged
- Absorbed photons always have energy above the ionisation energy
-
A metal with work function 4.0 eV is illuminated by a photon emitted in the transition from -3.4 eV to -13.6 eV. What is the maximum kinetic energy of the photoelectron?
- 4.0 eV
- 6.2 eV
- 10.2 eV
- 14.2 eV
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