The Implementation of MuDirac in Geant4: A Preliminary Approach to the Improvement of the Simulation of the Muonic Atom Cascade Process

IF 1.9 Q3 PHYSICS, CONDENSED MATTER Condensed Matter Pub Date : 2023-11-17 DOI:10.3390/condmat8040101
Matteo Cataldo, O. Cremonesi, Stefano Pozzi, E. Mocchiutti, Ritabrata Sarkar, A. Hillier, M. Clemenza
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Abstract

Muonic Atom X-ray Emission spectroscopy (µ-XES) is a novel elemental technique that exploits the high-energy X-rays emitted from the muonic atom cascade process to characterize materials. At the ISIS Neutron and Muon Source, the technique is performed at Port4 of the RIKEN-RAL facility, with a user demand that is increasing every year. To cope with this demand, it is necessary to continue to improve the method, either for the hardware (detectors, acquisition, etc.) or software (data analysis and interpretation). In both cases, Monte Carlo codes play an important role: with a simulation, it is possible to reproduce the experimental setup and provide a reliable quantitative analysis. In this work, we investigate the capabilities of GEANT4 for such applications. From the results, we observed that the generation of X-rays, especially the kα and kβ transition for high Z atoms, are not in agreement with the experimental ones. A solution to this issue, other than an attempt with a small modification of the GEANT4 cascade class, could be provided by a database of transition energy calculated by a Dirac equation software called MuDirac. The software, developed by the UKRI scientific computing department and the ISIS muon group, can compute all the transition energy for a given nuclide. Here, preliminary results of the implementation of the MuDirac database in GEANT4 are reported.
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在 Geant4 中实施 MuDirac:改进 µ 子原子级联过程模拟的初步方法
μ介子原子 X 射线发射光谱(µ-XES)是一种新型元素技术,它利用μ介子原子级联过程发射的高能 X 射线来表征材料。在 ISIS 中子和μ介子源,该技术在理化学研究所-拉尔设施的 4 号端口进行,用户需求每年都在增加。为了满足这一需求,有必要继续改进该方法,无论是硬件(探测器、采集等)还是软件(数据分析和解释)。在这两种情况下,蒙特卡罗代码都发挥着重要作用:通过模拟,可以重现实验装置,并提供可靠的定量分析。在这项工作中,我们研究了 GEANT4 在此类应用中的能力。从结果中,我们发现 X 射线的产生,尤其是高 Z 原子的 kα 和 kβ 转变,与实验结果并不一致。除了尝试对 GEANT4 级联类稍作修改外,一个名为 MuDirac 的狄拉克方程软件计算出的转变能数据库也可以解决这个问题。该软件由英国皇家研究院科学计算部门和 ISIS μ介子小组开发,可以计算给定核素的所有转变能。这里报告了在 GEANT4 中实施 MuDirac 数据库的初步结果。
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来源期刊
Condensed Matter
Condensed Matter PHYSICS, CONDENSED MATTER-
CiteScore
2.90
自引率
11.80%
发文量
58
审稿时长
10 weeks
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