Novel ion imaging concept based on time-of-flight measurements with low gain avalanche detectors
Felix Ulrich-Pur, Thomas Bergauer, Albert Hirtl, Christian Irmler,, Stefanie Kaser, Florian Pitters, Simon Rit

TL;DR
This paper proposes a novel ion computed tomography method using time-of-flight measurements with LGAD detectors, eliminating the need for residual energy detectors and achieving high RSP accuracy in simulations.
Contribution
It introduces a new TOF-iCT approach based on LGAD detectors that estimates WEPL indirectly, offering a potentially more compact and efficient system for clinical use.
Findings
Achieved RSP accuracy of 0.91% in simulations.
Demonstrated feasibility of TOF-based RSP measurement without residual energy detectors.
Proposed system could be more compact and suitable for clinical integration.
Abstract
Treatment planning in ion beam therapy requires accurate knowledge of the relative stopping power (RSP) distribution within the patient. Currently, RSP maps are obtained via conventional x-ray computed tomography (CT) by converting the measured attenuation coefficients of photons into RSP values for ions. Alternatively, to avoid conversion errors that are inherent to this method, ion computed tomography (iCT) can be used since it allows determining the RSP directly. In typical iCT systems, which usually consist of a tracking system and a separate residual energy detector, the RSP is obtained by measuring the particle trajectory and the corresponding water equivalent path length (WEPL) of single ions travelling through the patient. Within this work, we explore a novel iCT approach which does not require a residual energy detector. Instead, the WEPL is estimated indirectly by determining…
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Taxonomy
TopicsAdvanced X-ray and CT Imaging · Radiation Therapy and Dosimetry · Nuclear Physics and Applications
