Characterization of a novel proton-CT scanner based on Silicon and LaBr$$_3$$(Ce) detectors

Author:

Nácher E.ORCID,Briz J. A.,Nerio A. N.,Perea A.,Távora V. G.,Tengblad O.,Ciemala M.,Cieplicka-Orynczak N.,Maj A.,Mazurek K.,Olko P.,Zieblinski M.,Borge M. J. G.

Abstract

AbstractTreatment planning systems at proton-therapy centres entirely use X-ray computed tomography (CT) as primary imaging technique to infer the proton treatment doses to tumour and healthy tissues. However, proton stopping powers in the body, as derived from X-ray images, suffer from important proton-range uncertainties. In order to reduce this uncertainty in range, one could use proton-CT images instead. The main goal of this work is to test the capabilities of a newly-developed proton-CT scanner, based on the use of a set of tracking detectors and a high energy resolution scintillator for the residual energy of the protons. Different custom-made phantoms were positioned at the field of view of the scanner and were irradiated with protons at the CCB proton-therapy center in Krakow. We measured with the phantoms at different angles and produced sinograms that were used to obtain reconstructed images by Filtered Back-Projection. The obtained images were used to determine the capabilities of our scanner in terms of spatial resolution and proton Relative Stopping Power (RSP) mapping and validate its use as proton-CT scanner. The results show that the scanner can produce medium-high quality images, with spatial resolution better than 2 mm in radiography, below 3 mm in tomography and resolving power in the RSP comparable to other state-of-the-art pCT scanners.

Funder

Comunidad de Madrid

H2020 Research Infrastructures

Agencia Estatal de Investigación

Conselleria de Cultura, Educación y Ciencia, Generalitat Valenciana

Consejo Superior de Investigaciones Cientificas

Publisher

Springer Science and Business Media LLC

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