论文标题
未关注的XMM-Newton背景的起源,其可变性和雅典娜的教训
The origin of the unfocused XMM-Newton background, its variability and lessons learned for ATHENA
论文作者
论文摘要
我们分析了XMM-Newton板上MOS2检测器的Sky Outfov区域的未暴露的数据,其中涵盖了15年的数据,总计255 MS。我们表现出令人信服的证据,即XMM-Newton中未关注的背景的起源是由于能量质量的质子,电子,电子,硬X射线光子造成的。银河宇宙射线是主要的贡献者,如紧密相关性(总散射的2.6%)与SOHO EPHIN检测器的1 GEV质子数据所示。只有在排除太阳能颗粒事件(SEP)时,才发现了与Chandra背景速率的代表,发现了紧密的相关性,揭示了相似轨道中检测器的共同背景来源,以及史诗辐射监测器(ERM)的数据。外电子带的入口与OUTFOV MOS2速率突然增加和光谱变化有关。这些事实支持MEV电子可以产生未关注的背景信号的事实。 MOS2 OUTFOV数据与SOHO EPHIN数据之间的相关性揭示了与PN数据研究中发现的时间常数和各向同性相似的术语常数。该组件的最合理的起源是在检测器中cosmic X射线背景(CXB)散落的X射线光子的坚硬X射线光子,在两个探测器中的信号强度支持的两个检测器支持的两个探测器中,具有不同的厚度。基于这种物理理解,已经提出了船上的粒子辐射监视器,目前正在研究中。它将能够以必要的准确性和精度跟踪不同的物种,以确保背景2%可重复性的挑战性要求。
We analyzed the unexposed to the sky outFOV region of the MOS2 detector on board XMM-Newton covering 15 years of data amounting to 255 Ms. We show convincing evidence that the origin of the unfocused background in XMM-Newton is due to energetic protons, electrons and hard X-ray photons. Galactic Cosmic Rays are the main contributors as shown by the tight correlation (2.6% of total scatter) with 1 GeV protons data of the SOHO EPHIN detector. Tight correlations are found with a proxy of the Chandra background rate, revealing the common source of background for detectors in similar orbits, and with the data of the EPIC Radiation Monitor (ERM), only when excluding Solar Energetic Particles events (SEPs). The entrance to the outer electron belts is associated to a sudden increase in the outFOV MOS2 rate and a spectral change. These facts support the fact that MeV electrons can generate an unfocused background signal. The correlation between MOS2 outFOV data and the SOHO EPHIN data reveals a term constant in time and isotropic similar to the one found in the study of the pn data. The most plausible origin of this component is hard unfocused X-ray photons of the Cosmic X-ray Background (CXB) Compton-scattering in the detector as supported by the strength of the signal in the two detectors with different thicknesses. Based on this physical understanding a particle radiation monitor on board ATHENA has been proposed and it is currently under study. It will be able to track different species with the necessary accuracy and precision to guarantee the challenging requirement of 2% reproducibility of the background.