Review on the characteristics of radiation detectors for dosimetry and imaging
Обзор характеристик радиационных детекторов для дозиметрии и визуализации
2014-09-17
SCID: 54.1/9cpe7ayj
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dosimetryionization detectorsmedical imagingradiation detectorssemiconductor detectors
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Abstract (AI)
The enormous advances in the understanding of human anatomy, physiology and pathology in recent decades have led to ever-improving methods of disease prevention, diagnosis and treatment. Many of these achievements have been enabled, at least in part, by advances in ionizing radiation detectors. Radiology has been transformed by the implementation of multi-slice CT and digital x-ray imaging systems, with silver halide films now largely obsolete for many applications. Nuclear medicine has benefited from more sensitive, faster and higher-resolution detectors delivering ever-higher SPECT and PET image quality. PET/MR systems have been enabled by the development of gamma ray detectors that can operate in high magnetic fields. These huge advances in imaging have enabled equally impressive steps forward in radiotherapy delivery accuracy, with 4DCT, PET and MRI routinely used in treatment planning and online image guidance provided by cone-beam CT. The challenge of ensuring safe, accurate and precise delivery of highly complex radiation fields has also both driven and benefited from advances in radiation detectors. Detector systems have been developed for the measurement of electron, intensity-modulated and modulated arc x-ray, proton and ion beams, and around brachytherapy sources based on a very wide range of technologies. The types of measurement performed are equally wide, encompassing commissioning and quality assurance, reference dosimetry, in vivo dosimetry and personal and environmental monitoring. In this article, we briefly introduce the general physical characteristics and properties that are commonly used to describe the behaviour and performance of both discrete and imaging detectors. The physical principles of operation of calorimeters; ionization and charge detectors; semiconductor, luminescent, scintillating and chemical detectors; and radiochromic and radiographic films are then reviewed and their principle applications discussed. Finally, a general discussion of the application of detectors for x-ray nuclear medicine and ion beam imaging and dosimetry is presented.
Key Findings
1
Advances in ionizing-radiation detectors enabled major improvements in multi-slice CT, digital radiography, SPECT, PET, and PET/MR imaging.
2
Detector systems now measure electron, modulated photon, proton, ion, and brachytherapy radiation fields for commissioning, quality assurance, dosimetry, and monitoring.
3
High-field-compatible gamma-ray detectors made PET/MR systems feasible, while newer detectors improved nuclear-medicine sensitivity, speed, and spatial resolution.
4
Radiation-detector advances supported more accurate radiotherapy through 4DCT, PET, MRI treatment planning, and cone-beam CT image guidance.
5
The review compares operating principles and applications of calorimetric, ionization, semiconductor, luminescent, scintillating, chemical, radiochromic, and radiographic detectors.
Research Object
Radiation detectors used for dosimetry and imaging
Research Subject
The physical characteristics, operating principles, performance, and applications of discrete and imaging radiation detectors
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2014-09-17
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