DIAGNOSTIC RADIOGRAPHY · NTA LEVEL 4 · SEMESTER ONE
Radioactivity and X-ray Interaction with Matter
CRT04106 · Radiation Sciences
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Radioactivity and X-ray Interaction with Matter
RADIATION SCIENCE
CHAPTER 2
- Radioactivity
- Thermionic Emission
- Photoelectric Effect
✓Compton Scattering
- Beam Attenuation
- Half Value Layer
- X-ray interaction with matter✓Radioactivity
- Radioactivity is the spontaneous disintegration of
- unstable atomic nuclei, releasing energy in the form of
- radiation.
- It was discovered in 1896 by Henri Becquerel and later
- studied by Marie and Pierre Curie.
- Atoms that undergo radioactive decay are called
- radioisotopes.
- Causes of Radioactivity
- Nuclei are radioactive if they are unstable due to:
- Unfavorable proton-to-neutron ratio.
- Excess energy within the nucleus.• To achieve stability, these nuclei disintegrate and emit
- radiation.
- Types of Radioactive Radiation
- (a) Alpha (α) Particles
- Composition: 2 protons + 2 neutrons (Helium nucleus).
• Charge: +2.
- Mass: Heavy.
- Penetration: Very low (stopped by paper or skin).
- Effect: Highly ionizing, dangerous if ingested or inhaled.(b) Beta (β) Particles
- Two types:
- o β- (electron emission): Neutron → Proton + Electron +
- Antineutrino.
- o β+ (positron emission): Proton → Neutron + Positron +
- Neutrino.
- Charge: -1 (β-) or +1 (β+).
- Penetration: Moderate (stopped by aluminum sheet).
- Effect: Medium ionizing power.
- (c) Gamma (γ) Rays
- Composition: Electromagnetic radiation (photons).
• Charge: None.
- Mass: None.
- Penetration: Very high (needs lead or thick concrete to
- stop).
- Effect: Low ionizing but very penetrating.Units of Radioactivity
- Becquerel (Bq): 1 disintegration per second.
- Curie (Ci): 3.7 × 10¹⁰ disintegrations per second.
- Gray (Gy): Unit of absorbed dose (1 Gy = 1 J/kg).
- Sievert (Sv): Biological effect of absorbed dose (dose
- equivalent).
- Detection of Radioactivity
- Geiger–Müller counter
- Scintillation counter
- Cloud chamber
- Film badges (for monitoring exposure in
- radiology/medicine)
- Applications of Radioactivity
- 1.Medicine
- o Cancer treatment (radiotherapy, e.g., Cobalt-60).
- o Diagnostic imaging (PET scan using positron
- emitters).
- 2.Industry
- o Tracers for leaks.
- o Thickness control in manufacturing.
- 3.Agricultureo Food preservation (irradiation).
- o Mutation breeding.
- 4.Archaeology & Geology
- o Carbon-14 dating.
- o Uranium-lead dating of rocks.
- 5.Energy
- o Nuclear power generation.
- Dangers of Radioactivity
- Causes cell damage, cancer, and mutations.
- Acute exposure → Radiation sickness (nausea, hair loss,
- death at high doses).
- Requires strict safety measures: shielding, monitoring,
- and controlled exposure✓Thermionic Emission
- Thermionic emission is the release (emission) of
- electrons from the surface of a metal when it is heated to
- a high temperature.
- At high temperatures, electrons gain sufficient
- kinetic energy to overcome the work function (the
- minimum energy required for an electron to escape the
metal surface).
Basic Principle
- Metals have free electrons in the conduction band that
- move randomly.• At ordinary temperatures, these electrons lack enough
- energy to escape.
- When heated strongly:
- o Electrons gain energy from thermal vibrations.
- o If energy > work function → electrons are emitted
from the surface.
Factors Affecting Thermionic Emission
- 1.Temperature – higher temperature increases emission.
- 2.Work function of material – metals with lower work
- function emit electrons more easily.
- 3.Surface condition – impurities or oxides can hinder
- electron escape.
- 4.Vacuum condition – prevents electrons from colliding
- with air molecules.Applications of Thermionic Emission
- 1.Cathode Ray Tubes (CRT)
- o Used in old television and oscilloscope screens.
- o Electrons emitted by heated filament are accelerated
- and focused to form images.
- 2.X-ray Tubes
- o Thermionically emitted electrons from a heated
- cathode are accelerated to strike a metal target →
- production of X-rays.3.Vacuum Tubes / Valves
- o Early amplifiers, rectifiers, and oscillators.
- 4.Electron Microscopes
- o Hot filament acts as electron source for imaging.
- 5.Radio Transmitters
- o Thermionic valves were used before semiconductor✓X-ray Interaction with Matter
- X-rays interact with matter in the following five ways:
- 1.Coherent scattering
- 2.Compton scattering
- 3.Photoelectric effect
- 4.Pair production
- 5.Photodisintegration.
- Only Compton scattering and photoelectric effect are
- important in making an x-ray image (diagnostic
- radiology).
- The probability and type of interaction to occur
- depends on;
- a)X-ray photon energy
- b)The atomic number (Z)
- c)Density of the material.
- d)Thickness of the material
- Mechanisms of X-ray Interaction with Matter
- 1.Coherent (Classical/Rayleigh) Scattering
- Process:
- Occurs when a low-energy X-ray photon (<10
- keV) interacts with atoms.
- The photon changes direction but does not lose
- energy.❖There is no energy transfer and therefore no
- ionization.
- Result:
- Only contributes slightly to image noise, the
- general graying of an image that reduces image
- contrast.
- Significance:
- Coherent scattering is of little importance
(negligible effect) to diagnostic radiology.❖This is because coherent scattering primarily involves low-energy x-rays, which contribute little to the medical image.
- 2.Compton Scattering
- Process:
- In Compton scattering, the incident x-ray photon
- interacts with an outer-shell electron and ejects it
- from the atom, thereby ionizing the atom.
- X-rays at the diagnostic range can undergo
- Compton scattering but mainly the moderate
- energy x-rays.
- Dependence:
- Probability depends mainly on electron density,
- not atomic number.
- Dominates at moderate photon energies (20–150
- keV).
- Significance:
- Major source of scatter radiation in diagnostic
- imaging.
- Reduces image contrast.
- Primary contributor to radiation dose to staff.
- 3.Photoelectric Effect
- Process:
- An X-ray photon transfers all its energy to a
- tightly bound inner-shell electron.
- The electron is ejected (photoelectron).
- The incident photon is totally absorbed.
- The vacancy is filled by another electron,
- releasing characteristic radiation or Auger
- electron.Significance:
- Main contributor to image contrast in diagnostic
- radiology (especially bone vs. soft tissue).
- Also increases patient dose because energy is
- absorbed.
- Most important process in diagnostic radiology.
- 4.Pair Production
- Process:
- Occurs when photon energy > 1.022 MeV.
- Photon interacts with the nucleus’ electric field and
- converts into an electron-positron pair.
- Significance:
- Not relevant in diagnostic radiology (too high
- energy).
- Important in radiation therapy and PET imaging.5.Photodisintegration
- Process:
- Occurs at photon energies > 10 MeV.
- Photon is absorbed by nucleus, causing it to emit
- a nucleon (proton or neutron).
- Significance:
- Only relevant in high-energy radiation therapy.Factors Affecting X-ray Interaction
- 1.Photon Energy (kVp)
- Low kVp → More photoelectric effect (high contrast,
- high dose).
- High kVp → More Compton scattering (lower
- contrast, lower dose).
- Very high energies (>1 MeV) → Pair production,
- photodisintegration.
- 2.Atomic Number (Z) of absorber
- Higher Z → Stronger photoelectric effect.
- Example: Bone (calcium, high Z) absorbs more than
- soft tissue (low Z).
- 3.Density of absorber
- Denser material → More interactions.
- 4.Thickness of absorber
- Thicker material → More interactions.Practical Applications in Radiology
• Image Contrast:
- Determined mainly by balance between photoelectric
- effect (contrast) and Compton scattering (degrades
- contrast).
- Radiation Protection:
- Lead (high Z) is effective shielding → photoelectric
absorption dominates.
• Clinical Imaging:
- Low kVp for extremities → maximize photoelectric
- effect.
- High kVp for chest → minimize absorption, allow
- penetration.
- Radiotherapy:
- Pair production and photodisintegration become
- important at therapeutic energies.✓Beam Attenuation
- Definition
- Beam attenuation is the reduction in the intensity
- (quantity) of an X-ray beam as it passes through matter.
- Occurs due to absorption (mainly photoelectric effect)
- and scattering (mainly Compton).
- Process
- As X-rays pass through tissue, some photons are
- removed from the primary beam:
- Absorbed → contribute to patient dose.
- Scattered → reduce image quality and increase staff
- exposure.✓ Half Value Layer (HVL)
- Definition
- The thickness of a specified material required to reduce
- the intensity of an X-ray beam to one-half of its original
- value.
- Units
- Measured in mm of Aluminum (mm Al) for diagnostic Xrays.
- For higher energies (therapy), expressed in mm of lead
- (Pb) or cm of concrete.Significance
- 1.Beam Quality Indicator
- HVL measures the penetrability (hardness) of the
- beam.
- Higher HVL = more penetrating (harder beam).
- 2.Filtration Effect
- Adding filters (e.g., Al sheets) increases HVL by
- removing low-energy photons.
- 3.Radiation Protection
- Determines shielding requirements.
- 4.Quality Control
- Routine HVL testing ensures X-ray equipment is
producing beams of appropriate quality.