Feasibility study of the proton yield from the reaction D( 3He,p)4 He as a possible tool for radiotherapy treatment

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Abstract

Recent achievements in proton and carbon ions therapy have shown the importance of the hadron therapy methods. Aiming at radiotherapy applications such as dermatological and intra-operative procedures, where a short range treatment is needed, we have studied the use of nuclear reactions induced by low energy ions from small accelerators. A very suitable reaction is D( 3He,p)4He, using 3He+ ions with energies of about 800 keV. The resulting protons have energies above 17 MeV and could deliver significant radiation dose depending on the accelerator 3He+ beam current and the irradiation time. The deuterium containing target was prepared by reactive magnetron sputtering of titanium in Ar and Ar + D2 radiofrequency plasma on a substrate of Silicon. The Ti-Dx stoichiometry and deuterium content was determined by Ion Beam Analysis. The accelerated 3He+ beam was provided by the 2.5MV Van de Graaff accelerator at the National Laboratories of Legnaro, INFN, Italy. Proton yield as a function of the beam current at different forward scattering angles has been studied for the energies of the incoming 3He+ in the 700keV - 800keV energy interval. The irradiated volume and the radiation dose in biological tissues as a function of the proton energy and proton yield has been estimated. Possible applications in small animal treatment studies as well as potential clinical radiotherapy applications are discussed.

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Uzunov, N. M., Liguori, N., Fontana, C. L., Baneva, Y., Atroshchenko, K., Bello, M., … Rossi, P. (2012). Feasibility study of the proton yield from the reaction D( 3He,p)4 He as a possible tool for radiotherapy treatment. In Journal of Physics: Conference Series (Vol. 398). Institute of Physics Publishing. https://doi.org/10.1088/1742-6596/398/1/012029

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