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Dive into the research topics where Detlef Mattern is active.

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Featured researches published by Detlef Mattern.


Medical Physics | 2004

New x-ray tube performance in computed tomography by introducing the rotating envelope tube technology.

Peter Schardt; Josef Deuringer; Jörg Freudenberger; Erich Hell; Wolfgang Knüpfer; Detlef Mattern; Markus Schild

The future demands of computed tomography imaging regarding the x-ray source can be summarized with higher scan power, shorter rotation times, shorter cool down times and smaller focal spots. We report on a new tube technology satisfying all these demands by making use of a novel cooling principle on one hand and of a novel beam control system on the other hand. Nowadays tubes use a rotating anode disk mainly cooled via radiation. The Straton x-ray tube is the first tube available for clinical routine utilizing convective cooling exclusively. It is demonstrated that this cooling principle makes large heat storage capacities of the anode disk obsolete. The unprecedented cooling rate of 4.8 MHU/min eliminates the need for waiting times due to anode cooling in clinical workflow. Moreover, an electronic beam deflection system for focal spot position and size control opens the door to advanced applications. The physical backgrounds are discussed and the technical realization is presented. From this discussion the superior suitability of this tube to withstand g-forces well above 20 g created by fast rotating gantries will become evident. Experience from a large clinical trial is reported and possible ways for future developments are discussed.


Nuclear Physics B - Proceedings Supplements | 1999

Novel X-ray detectors for medical imaging

Wolfgang Knüpfer; Erich Hell; Detlef Mattern

Abstract A number of different imaging systems are in use in X-ray medical diagnostics (e.g. digital radiography or computer tomography). The design goal of these imaging systems is to optimally use the information contained in X-ray quanta that have passed through the patient. The best image quality, as well as the minimisation of the X-ray dose applied to the patient are of prime importance. We report about innovations for novel detectors which reduce the X-ray dose and improve the image quality simultaneously. Advances in thin film electronics have permitted the development of large a -Si:H imaging arrays to design fat panel solid state detectors (short FD, up to 45 × 45 cm 2 ) for both digital radiography and fluoroscopy. The proposed detector consists of a CsI:T1 needle shaped scintillation crystal layer (thickness: 450 μm, needle diameter ∼ 10 μm) in front of an a -Si:H-panel. The Detective Quantum Efficiency (DQE) is about 65% (at spatial frequency zero) and spatial resolution is 2.8 lp/mm at 20% of the MTF and 6.2 lp/mm at 4%. In computed tomography (CT), a new geenration of linear detector array consists of Gadolinium Oxysulfid (GOS) ceramic scintillator elements, glued onto photodiodes. Important criteria for the selection of the detector material are good absorption of the incident X-rays (α > 95%) and high efficiency of conversion of the absorbed radiation energy to an electrical signal. A very short decay time to extremely low levels of afterglow is an advantage for the very short scanning times in CT. One gets a DQE (at 0 mm −1 ) about 80%. The next step toward dose reduction could be implemented by the application of monochromatic instead of polychromatic X-rays. This would additionally improve the DQE and thus enhance image quality. In addition, with the application of monochromatic X-rays, scattered radiation could be suppressed to a large extent by energy-selective single photon measurement, without loss of unscattered photons. At present, large area detectors in particular suffer from image quality losses, if no scattered radiation (multiline) grid is used.


Archive | 2002

Directly heated thermionic flat emitter

Erich Hell; Detlef Mattern


Archive | 2000

A binderless storage phosphor screen with needle shaped crystals and methods for producing the same

Manfred Fuchs; Erich Hell; Paul C; O Agfa-Gevaert N.V. Leblans; Detlef Mattern; Berhard Schmitt


Archive | 2000

X-ray tube with flying focus

Erich Hell; Detlef Mattern; Peter Schardt


Archive | 2000

Binderless storage phosphor screen with needle shaped crystals

Erich Hell; Manfred Fuchs; Detlef Mattern; Bernhard Schmitt; Paul Leblans


Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2000

The evolution of scintillating medical detectors

Erich Hell; Wolfgang Knüpfer; Detlef Mattern


Archive | 1999

X-ray source with selectable focal spot size

Erich Hell; Detlef Mattern; Peter Schardt


Archive | 2000

X-ray emitter with force-cooled rotating anode

Erich Hell; Wolfgang Knüpfer; Detlef Mattern; Peter Schardt


Archive | 1999

Computed tomography system with arrangement for cooling the x-ray radiator mounted on a rotating gantry

Erich Hell; Detlef Mattern; Thomas Ohrndorf; Peter Schardt

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