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Calibration of CR-39 with atomic force microscope for the measurement of short range tracks from proton-induced target fragmentation reactions
Affiliation:1. Radiation Measurement Research Section, National Institute of Radiological Sciences, 4-9-1 Anagawa, Inage, Chiba 263-8555, Japan;2. College of Industrial Technology, Nihon University, Chiba 275-8576, Japan;3. Department of Physics, Oklahoma State University, Stillwater, OK 74074, USA;1. Institute of Radiation Medicine, Fudan University, No. 2094, Xietu Road, Shanghai 200032, China;2. Ningbo Medical Center, Lihuili Hospital, No. 57, Xingning Road, Ningbo 315041, Zhejiang, China;1. Fukushima Medical University, 1 Hikarigaoka, Fukushima 960-1295, Japan;2. Research Center for Radiation Protection, National Institute of Radiological Sciences, 4-9-1 Anagawa, Inage, Chiba 263–8555, Japan;3. Institute of Radiation Emergency Medicine, Hirosaki University, 66-1 Hon-cho, Hirosaki, Aomori 036-8564, Japan
Abstract:We studied the track response of CR-39 plastic nuclear track detectors (PNTD) for low (<6 MeV/n) and high (>100 MeV/n) energy heavy ions using the atomic force microscope (AFM). CR-39 PNTD was exposed to several heavy ion beams of different energy at HIMAC (Heavy Ion Medical Accelerator in Chiba). For AFM measurement, the amount of bulk etch was controlled to be ∼2 μm in order to avoid etching away of short range tracks. The response data obtained by AFM for ∼2 μm bulk etch was in good agreement with data obtained by the conventional optical microscope analysis for larger bulk etch. The response data from low energy beams (stopping near the surface) was also consistent with the data from high energy beams (penetrating the detector) as a function of REL (restricted energy loss) with the δ-ray cut off energy of ω0 = 200 eV. We experimentally verified that REL (ω0 = 200 eV) gives a universal function for wide energy range in CR-39 PNTD. This work has been done as part of a basic study in the measurement of secondary short range tracks produced by target fragmentation reactions in proton cancer therapy fields.
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