Ionizing Radiation Detectors For Medical Imaging

Chapter 1: Introduction

Alberto Del Guerra,
Department of Physics, University of Pisa and INFN, Sezione di Pisa
Pisa, Italy

(e-mail: alberto.delguerra@djunipi.it)

1.1 Medical Imaging

The enormous development in detectors for Medical Imaging has been largely due to contributions from the technological innovations in other fields of physics, such as solid state physics, space physics and high energy Physics (HEP). In particular the latter has greatly contributed greatly to the development of new types of detectors, particularly for ionizing radiation. However, it is extremely important to recall that a detector for medical applications is a " special detector", the performance specifications being related to patient comfort, diagnosis and eventual therapy. In this respect, some specific concerns will be presented in the next session.

Table 1.1 lists the major fields in medical diagnosis together with the parameters measured and the specific medical applications. The progress in the last twenty years has only been possible with the advent of integrated electronics and fast computers. This has permitted the shift from analog to digital imaging, with more quantitative information being available for diagnosis and prognosis.

Table 1.1: Bio-Medical Imaging

(Physical Parameters measured)

(Medical application)

X-RAY RADIOLOGY
2-D Film
X-ray CT
Digital Subtraction Angiography

X-ray absorption
Density and average Z
Contrast distribution

Anatomy; mineral content; movement of contrast material

ULTRASOUND

Acoustic impedance mismatch; Sound velocity and attenuation

Anatomy; tissue structural characteristics; blood velocity

NUCLEAR MEDICINE
Planar scintigraphy, SPECT, PET

Concentration of radionuclides

Metabolism; receptor site Concentration and flow

NUCLEAR MAGNETIC
RESONANCE, MRI, MRS

Concentration of nuclides...

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