论文标题

X射线镜的放牧发生率的软质子散射:非弹性近似框架中实验数据的分析

Soft proton scattering at grazing incidence from X-ray mirrors: analysis of experimental data in the framework of the non-elastic approximation

论文作者

Amato, R., Mineo, T., D'Aì, A., Diebold, S., Fioretti, V., Guzman, A., Lotti, S., Macculi, C., Molendi, S., Perinati, E., Tenzer, C., Santangelo, A.

论文摘要

带有放牧发动机的天文X射线观测值面临着从镜子向焦平面伪装低能量质子的问题的问题。那些质子构成了非X射线背景的可变,不可预测的组成部分,它强烈影响天文观测,并且必须正确估计其在焦平面上的通量。因此,我们研究它们在用放牧角度影响时如何从镜面散射。我们比较了Remizovich等人提出的放牧发生率的颗粒反射率的非弹性模型。 (1980年),X射线镜的质子散射少数可用的实验测量。我们基于这些实验数据与Remizovich解决方案的拟合开发了半经验分析模型。我们得出的结论是,散射概率弱取决于撞击质子的能量,并且相对能量损失对于正确对数据进行建模是必要的。我们提出的模型不假定对入射能的依赖性,并且可以在粒子传输模拟代码中实现,以生成例如特定X射线任务的质子响应矩阵。在较低能量和其他镜像样品(例如雅典娜硅孔径)上进行的进一步的实验室测量将改善模型的分辨率,并使我们能够为更广泛的X射线观测值样本构建适当的质子响应矩阵。

Astronomical X-ray observatories with grazing incidence optics face the problem of pseudo-focusing of low energy protons from the mirrors towards the focal plane. Those protons constitute a variable, unpredictable component of the non X-ray background that strongly affects astronomical observations and a correct estimation of their flux at the focal plane is then essential. For this reason, we investigate how they are scattered from the mirror surfaces when impacting with grazing angles. We compare the non-elastic model of reflectivity of particles at grazing incidence proposed by Remizovich et al. (1980) with the few available experimental measurements of proton scattering from X-ray mirrors. We develop a semi-empirical analytical model based on the fit of those experimental data with the Remizovich solution. We conclude that the scattering probability weakly depends on the energy of the impinging protons and that the relative energy losses are necessary to correctly model the data. The model we propose assumes no dependence on the incident energy and can be implemented in particle transport simulation codes to generate, for instance, proton response matrices for specific X-ray missions. Further laboratory measurements at lower energies and on other mirror samples, such as ATHENA Silicon Pore Optics, will improve the resolution of the model and will allow us to build the proper proton response matrices for a wider sample of X-ray observatories.

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