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首页> 外文期刊>Nuclear Instruments & Methods in Physics Research. B, Beam Interactions with Materials and Atoms >Monte Carlo simulation of energy absorbed in phenolic ESR dosimeters a dded with gadolinium exposed to thermal, epithermal and fast neutrons
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Monte Carlo simulation of energy absorbed in phenolic ESR dosimeters a dded with gadolinium exposed to thermal, epithermal and fast neutrons

机译:thermal ESR剂量计吸收absorbed,热,超热和快中子后吸收能量的蒙特卡罗模拟

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摘要

In this work analyses of the energy released per unit mass in phenolic compound exposed to neutron beams were performed with the aim of predicting the increase in dose achievable by addition of gadolinium (Gd) inside the pellets. In particular, Monte Carlo (MC) simulations were carried out for IRGANOX~® 1076 phenolic compound irradiated with neutron beams with different energy spectra at various depths inside a water phantom. The addition of gadolinium increases sensitivity of phenolic ESR (electron spin resonance) dosimeters to neutrons thanks to the high gadolinium cross section for neutron capture and to the large number of secondary particles (mainly Auger and internal conversion electrons) which are able to release energy inside the sensitive material layers. For small depths in water phantom and low energy neutron spectra the increase in dose due to gadolinium is large (more than a factor 50). The enhancement is smaller in case of epithermal neutron beam, whereas the increase in dose for fast neutrons is less than 50%. In order to have a comparison with other ESR dosimeters the energy released per unit mass in phenolic compound was compared with that calculated in alanine pellets. For thermal neutron beams the energy released in phenolic compound with gadolinium is comparable to that released in alanine for small depths in phantom, whereas it is larger than in alanine for large depths. In case of epithermal and fast neutron beams the energy released in phenolic compound is larger than in alanine samples because the elastic scattering with hydrogen nuclei is more probable for high neutron energies and this phenolic compound is characterized by an higher number of 'H nuclei than alanine. All results here found suggest that these phenolic pellets could be fruitfully used for dosimetric applications in Neutron Capture Therapy.
机译:在这项工作中,进行了分析暴露于中子束的酚类化合物中每单位质量释放的能量的目的,以预测通过在丸粒内添加g(Gd)可获得的剂量增加。特别地,对在水体模内不同深度处以不同能谱的中子束辐照的IRGANOX®1076酚类化合物进行了Monte Carlo(MC)模拟。 the的添加增加了酚类ESR(电子自旋共振)剂量计对中子的敏感性,这归因于中子俘获的high截面高以及能够在内部释放能量的大量次级粒子(主要是俄歇电子和内部转换电子)敏感材料层。对于水幻影中的小深度和低能中子光谱,由于g引起的剂量增加很大(超过50倍)。在超热中子束的情况下,增强作用较小,而快中子的剂量增加小于50%。为了与其他ESR剂量计进行比较,将酚化合物中每单位质量释放的能量与丙氨酸颗粒中计算出的能量进行了比较。对于热中子束,在幻影中深度较小时,酚类化合物与lin中释放的能量与丙氨酸中释放的能量相当,而对于较大深度中的能量大于丙氨酸中释放的能量。在超热和快中子束的情况下,酚类化合物释放的能量比丙氨酸样品大,因为氢原子核的弹性散射更容易发生高中子能,并且这种酚类化合物的特征在于'H核的数量比丙氨酸多。此处发现的所有结果表明,这些酚醛颗粒可以有效地用于中子俘获治疗中的剂量学应用。

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    Dipanimento di Fisica e Chimica (DiFC), Universita di Palermo, Viale delle Scienze, Ed.18,1-90128 Palermo, Italy,Istituto Nazionale di Fisica Nucleare (INFN), Sezione di Catania, Via Santa Sofia, 64,1-95123 Catania, Italy;

    Dipanimento di Fisica e Chimica (DiFC), Universita di Palermo, Viale delle Scienze, Ed.18,1-90128 Palermo, Italy,Istituto Nazionale di Fisica Nucleare (INFN), Sezione di Catania, Via Santa Sofia, 64,1-95123 Catania, Italy,Biopatologia e Biotecnologie Mediche, Universita degli Studi di Palermo, Palermo, Italy;

    Dipartimemo di Fiska, Universita di Milano and Istituto Nazionale di Fisica Nucleare (INFN), Sezione di Milano, Via C. Celoria, 16,1-20133 Milano, Italy, Dipanimento di Fisica e Chimica (DiFC), Universita di Palermo, Viale delle Scienze, Ed.18,1-90128 Palermo, Italy;

    Dipanimento di Fisica e Chimica (DiFC), Universita di Palermo, Viale delle Scienze, Ed.18,1-90128 Palermo, Italy;

    Dipanimento di Fisica e Chimica (DiFC), Universita di Palermo, Viale delle Scienze, Ed.18,1-90128 Palermo, Italy,Istituto Nazionale di Fisica Nucleare (INFN), Sezione di Catania, Via Santa Sofia, 64,1-95123 Catania, Italy,ATeN Center, Universita di Palermo, Viale delle Scienze, Edificio 18, 90128 Palermo, Italy;

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