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Experimental investigation at CATANA facility of n-10B and p-11B reactions for the enhancement of proton therapy
Affiliation:1. Politecnico di Milano, Dipartimento di Energia, via La Masa 34, Milano, Italy;2. INFN-Laboratori Nazionali di Legnaro, viale dell’Università 2, Legnaro, Padova, Italy;3. INFN-sezione di Milano, via Celoria 16, Milano, Italy;4. INFN-Laboratori Nazionali del Sud, via S. Sofia 62, Catania, Italy;5. Dipartimento di Fisica “E. Pancini” Università degli Studi di Napoli Federico II & INFN-sezione di Napoli, Complesso Universitario di Monte S. Angelo, 80126 Napoli, Italy;1. Cancer Center of Southeastern Ontario, 25 King Street West, Kingston, Ontario K7L 5P9, Canada;2. Simcoe Muskoka Regional Cancer Centre, Royal Victoria Regional Health Centre, 201 Georgian Drive, Barrie, Ontario L4M 6M2, Canada;3. R.S. McLaughlin Durham Regional Cancer Centre, Lakeridge Health Oshawa, 1 Hospital Court, Oshawa, Ontario, L1G 2B9, Canada;4. Odette Cancer Centre, Sunnybrook Health Sciences Centre, T-wing 2075 Bayview Avenue TG 260, Toronto, Ontario M4N 3M5, Canada;5. Princess Margaret Cancer Centre, Princess Margaret Hospital, 610 University Avenue, Toronto, Ontario M5G 2C1, Canada;6. Juravinski Cancer Centre – Hamilton Health Sciences, 699 Concession Street, Hamilton, Ontario L8V 5C2, Canada;1. Dipartimento di Scienze Matematiche e Informatiche, Scienze Fisiche e Scienze della Terra (MIFT), Università di Messina, V.le F.S. d’Alcontres, 31, 98166 S. Agata, Messina, Italy;2. Nuclear Physics Institute of ASCR, Hlavni 130, 250 68 Husinec Řež, Czech Republic;3. INFN, Sezione di Catania, V. S. Sofia, Catania 64-95123, Italy;1. Department of Radiation Oncology, State Key Laboratory of Oncology in South China, Collaborative Innovation Center for Cancer Medicine, Sun Yat-sen University Cancer Center, NO. 651 Dongfeng Road, Guangzhou 510060, China;2. Department of Radiotherapy, Zhongshan Affiliated Hospital, Guangzhou University of Chinese Medicine, NO. 3 Kangxin Road West District, Zhongshan 528401, China;1. Politecnico di Milano, Dipartimento di Energia, via La Masa 34, Milano, Italy;2. Istituto Nazionale di Fisica Nucleare INFN, Sezione di Milano, via Celoria 16, Milano, Italy;3. Istituto Nazionale di Fisica Nucleare INFN, Laboratori di Legnaro, viale dell’Università 2, Legnaro, Padova, Italy;1. Department of Bioelectrics and Biomedical Engineering, School of Advanced Technologies in Medicine, Isfahan University of Medical Sciences, Isfahan, Iran;2. Student Research Center, Isfahan University of Medical Sciences, Isfahan, Iran;3. Medical Image and Signal Processing Research Center, Isfahan University of Medical Sciences, Isfahan, Iran;4. Department of Neurology, School of Medicine, Isfahan University of Medical Sciences, Isfahan, Iran;5. Isfahan Neurosciences Research Center, Isfahan University of Medical Sciences, Isfahan, Iran
Abstract:The aim of the NEPTUNE (Nuclear process-driven Enhancement of Proton Therapy UNravEled) project is to investigate in detail both the physical and radiobiological phenomena that could justify an increase of the proton-induced cytogenetic effects in cells irradiated in presence of an agent containing natural boron.In this work, a double-stage silicon telescope coupled to different boron converters was irradiated at the CATANA proton therapy facility (INFN-LNS) for studying the proton boron fusion and the neutron boron capture reactions by discriminating secondary particles from primary protons.Different boron targets were developed by depositing boric acid, enriched with a higher than 99% content of 10B or 11B, on a 50 µm thick PolyMethilMetacrylate (PMMA) substrate. The 10B target allows to evaluate the contribution of lithium and alpha particles produced by the boron neutron capture reaction triggered by secondary thermal neutrons, while the 11B target is exploited for studying the effect of the p + 11B → 3α nuclear reaction directly triggered by primary protons.Experimental results clearly show the presence of alpha particles from both the reactions. The silicon telescope is capable of discriminating, by means of the so-called “scatter plots”, the contribution of alpha particles originated by thermal neutrons on 10B with respect to the ones produced by protons impinging on 11B. Although a reliable quantitative study of the alpha production rate has not been achieved yet, this work demonstrates that low energy and, therefore, high-LET particles from both the reactions can be measured.
Keywords:Silicon telescope  Proton boron fusion reaction  Proton therapy  Boron neutron capture reaction
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