2.2.4
Collisions of Electrons with Atoms
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Ionisation and Excitation
Both electrons being removed from an atom and the movement of electrons within energy levels in the atom explain commonly observed phenomena.

Ionisation
- To ionise an atom means to remove or add electrons to an atom.
- Ionisation in the context of quantum phenomena almost always means the removal of electrons completely from the atom.
- The energy needed for an electron to go from the ground state to being completely removed is called the ionisation energy.

Excitation
- Electrons can also be made to move from one energy level to the other.
- To do this, the electron needs exactly the energy difference between energy levels.
- One way to do this is for a photon to interact with the electron.
- The electron will absorb all the energy of the photon.

Excitation 2
- If the energy of the photon is exactly the energy difference between the energy levels, the electron will move up the energy levels.
- When an electron has moved up energy levels we called the electron "excited".
- The process of making the electron move up energy levels is called "excitation".
Fluorescent Tubes
It is important to understand how fluorescent tubes work.

Constituents of the tube
- A fluorescent tube has mercury vapour inside it.
- A fluorescent tube is coated on the inside with phosphor.
- There are free electrons in the fluorescent tube.
- A high voltage will accelerate these free electrons.

Excitation of electrons
- The high-energy free electrons then ionise the mercury vapour.
- This means that there are more free electrons than previously.
- The free electrons then excite electrons in the mercury atoms.

Release of photons
- The excited electrons then move back to their ground state.
- When they do so, they release the excess energy in the form of photons.
- These photons are high-frequency, high-energy, ultraviolet photons.

Absorption of high-energy photons
- The ultra-violet photons then collide with the phosphor coating on the inside of the tube.
- The electrons in the phosphor are now excited.

Release of visible light photons
- The excited electrons then eventually move back to their ground state. When they do so, they release the excess energy in the form of photons.
- These photons have a frequency in the visible range.
The Electron Volt
When dealing with energy levels of individual atoms, the SI unit of energy (the Joule, J) is far too big. So we need to define a more appropriate unit of energy, the electron volt, eV.

Definition of electron volt
- The electron volt is defined as the energy given to a fundamental charge, e, accelerated through a potential difference of 1 Volt.

Conversion
- To convert between J and eV, simply multiply or divide by the charge of the electron, e = 1.6×10-19.
- 1 eV = 1.6 ×10-19 J

Example - hydrogen
- Let's say the energy of an electron in a hydrogen atom is 13.6 eV.
- To find this in Joules, use the equation shown previously:
- 13.6 eV = 13.6 × 1.6 ×10-19 J
- 13.6 eV = 2.18 ×10-18 J (3 s.f.)
1Measurements & Errors
1.1Measurements & Errors
2Particles & Radiation
2.1Particles
2.2Electromagnetic Radiation & Quantum Phenomena
3Waves
3.1Progressive & Stationary Waves
3.2Refraction, Diffraction & Interference
4Mechanics & Materials
4.1Force, Energy & Momentum
5Electricity
5.1Current Electricity
6Further Mechanics & Thermal Physics (A2 only)
6.1Periodic Motion (A2 only)
6.2Thermal Physics (A2 only)
7Fields & Their Consequences (A2 only)
7.1Fields (A2 only)
7.2Gravitational Fields (A2 only)
7.3Electric Fields (A2 only)
7.4Capacitance (A2 only)
7.5Magnetic Fields (A2 only)
8Nuclear Physics (A2 only)
8.1Radioactivity (A2 only)
9Option: Astrophysics (A2 only)
9.1Telescopes (A2 only)
9.2Classification of Stars (A2 only)
9.3Cosmology (A2 only)
10Option: Medical Physics (A2 only)
10.1Physics of the Eye (A2 only)
10.2Physics of the Ear (A2 only)
10.3Biological Measurement (A2 only)
10.4Non-Ionising Imaging (A2 only)
10.5X-Ray Imaging (A2 only)
10.6Radionuclide Imaging & Therapy (A2 only)
11Option: Engineering Physics (A2 only)
11.1Rotational Dynamics (A2 only)
11.2Thermodynamics & Engines (A2 only)
12Option: Turning Points in Physics (A2 only)
12.1Discovery of the Electron (A2 only)
12.2Wave-Particle Duality (A2 only)
Jump to other topics
1Measurements & Errors
1.1Measurements & Errors
2Particles & Radiation
2.1Particles
2.2Electromagnetic Radiation & Quantum Phenomena
3Waves
3.1Progressive & Stationary Waves
3.2Refraction, Diffraction & Interference
4Mechanics & Materials
4.1Force, Energy & Momentum
5Electricity
5.1Current Electricity
6Further Mechanics & Thermal Physics (A2 only)
6.1Periodic Motion (A2 only)
6.2Thermal Physics (A2 only)
7Fields & Their Consequences (A2 only)
7.1Fields (A2 only)
7.2Gravitational Fields (A2 only)
7.3Electric Fields (A2 only)
7.4Capacitance (A2 only)
7.5Magnetic Fields (A2 only)
8Nuclear Physics (A2 only)
8.1Radioactivity (A2 only)
9Option: Astrophysics (A2 only)
9.1Telescopes (A2 only)
9.2Classification of Stars (A2 only)
9.3Cosmology (A2 only)
10Option: Medical Physics (A2 only)
10.1Physics of the Eye (A2 only)
10.2Physics of the Ear (A2 only)
10.3Biological Measurement (A2 only)
10.4Non-Ionising Imaging (A2 only)
10.5X-Ray Imaging (A2 only)
10.6Radionuclide Imaging & Therapy (A2 only)
11Option: Engineering Physics (A2 only)
11.1Rotational Dynamics (A2 only)
11.2Thermodynamics & Engines (A2 only)
12Option: Turning Points in Physics (A2 only)
12.1Discovery of the Electron (A2 only)
12.2Wave-Particle Duality (A2 only)
Practice questions on Collisions of Electrons with Atoms
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- 1
- 2When will an electron move into a higher energy level?Multiple choice
- 3Flourescent TubesPut in order
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