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Essentials of Nuclear Medicine Physics, Instrumentation, and Radiation Biology. Rachel A. Powsner
Читать онлайн.Название Essentials of Nuclear Medicine Physics, Instrumentation, and Radiation Biology
Год выпуска 0
isbn 9781119621010
Автор произведения Rachel A. Powsner
Жанр Медицина
Издательство John Wiley & Sons Limited
Figure 1.21 Decay schematics.
This curve, and therefore the average behavior of the sample of radioactivity, can be described by the decay equation:
where A(0) is the initial number of radioactive atoms.
A commonly used alternative form of the decay equation employs the decay constant (λ), which is approximately 0.693 divided by the half‐life (T1/2):
The decay equation can be rewritten as
The amount of activity of any radionuclide may be expressed as the number of decays per unit time. Common units for measuring radioactivity are the curie (after Marie Curie) or the SI unit, the becquerel (after another nuclear pioneer, Henri Becquerel). One becquerel is defined as one radioactive decay per second. Nuclear medicine doses are generally a million times greater and are more easily expressed in megabecquerels (MBq). One curie (Ci) is defined as 3.7 × 1010 decays per second (this was picked because it is approximately equal to the radioactivity emitted by 1 g of radium in equilibrium with its daughter nuclides). A partial list of conversion values is provided in Table 1.2.
A related term that is frequently confused with decay is the count, which refers to the registration of a single decay by a detector such as a Geiger counter. Most of the detectors used in nuclear medicine detect only a fraction of the decays, principally because the radiation from many of the decays is directed away from the detector. Count rate refers to the number of decays actually counted in a given time, usually counts per minute. All things being equal, the count rate will be proportional to the decay rate, and it is a commonly used, if inexact, measure of radioactivity.
Figure 1.22 Decay schemes showing principal transitions for technetium‐99m, indium‐111, iodine‐131 and radium‐226. Energy levels are rounded to three significant figures.
Figure 1.23 Decay curve. Note the progressive replacement of radioactive atoms (parent) by relatively more stable atoms (daughter) as shown schematically in each box.
Table 1.2 Conversion values for units of radioactivity
One curie (Ci) = |
|
1 × 103 mCi | 1 × 106 μCi | 37 × 109 Bq | 37 × 103 MBq |
---|---|---|---|---|---|
One millicurie (mCi) = | 1 × 10–3 Ci | 1 × 103 μCi | 37 × 106 Bq | 37 MBq | |
One microcurie (μCi) = | 1 × 10–6 Ci | 1 × 10–3 mCi | 37 × 103 Bq | 37 × 10–3 MBq | |
One bequerel (Bq)* = | 27 × 10–12 Ci | 27 × 10–9 mCi | 27 × 10–6 μCi | 1 × 10–6 MBq | |
One megabequerel (MBq) = | 27 × 10–6 Ci | 27 × 10–3 mCi | 27 μCi | 1 × 106 Bq |
* One bequerel = 1 decay per second.
Questions
1 The chemical interactions between various elements are mainly determined by:The number of protons.The number of neutrons.The number of electrons in the outermost shell.The number of protons minus the number of electrons.
2 For each of the five terms below, choose the best definition:Isobars.Isoclines.Isomers.Isotones.Isotopes.Atoms of the same element (equal Z) with different numbers of neutrons (N).Atoms of the same element (equal Z) with different numbers of protons.Atoms of different elements (different Z) with equal numbers of neutrons (N).Atoms of different elements with equal atomic mass (A).
3 Which of the following statements are correct?There is a stable isotope of technetium.Atoms with atomic numbers (Z) > 83 are inherently unstable.For lighter elements nuclear stability is achieved with equal numbers of protons and neutrons; for heavier elements the number of neutrons exceeds the number of protons.
4 For internal conversion to occur, the excess energy of the excited nucleus must equal or exceed:511 keV.1.022 MeV.The internal conversion coefficient.The average energy of the Auger electrons.The binding energy of the emitted electron.
5 For an atom undergoing beta decay, the average energy of the emitted beta particles is approximately:511 keV.0.551 times the loss of atomic mass.One half of the total energy released for the individual event.One third of the maximum energy of the emitted beta particles.Equal to the average energy of the accompanying antineutrinos.
6 You