剂量计
表征(材料科学)
空间辐射
物理
材料科学
空间技术
空格(标点符号)
电气工程
计算机科学
光电子学
电子工程
工程类
纳米技术
核物理学
航空航天工程
辐射
宇宙射线
操作系统
作者
William De Meyere,Abhimanyu Shanbhag,Alessandra Menicucci
标识
DOI:10.1109/tns.2024.3373748
摘要
The radiation environment in space can pose a serious risk to both humans and space systems. Widespread and continuous monitoring of this environment is essential to mitigate risks associated with radiation exposure. Miniaturization and use of commercial-off-the-shelf components have enabled significant advances in space technology. These trends can be leveraged to develop innovative radiation sensing and monitoring technologies. However, dosimeters that can effectively measure radiation levels while minimizing their impact on size, power, mass, and cost are required. Floating gate dosimeters possess these characteristics, but rigorous testing is needed to ensure their accuracy in spacecraft applications. In this study, we conducted an extensive characterization campaign for a floating gate dosimeter chip using a proton beam, increasing the available information on the sensor. The behavior of the dosimeter with respect to resolution, dose rate, beam energy, total ionizing dose, power consumption, annealing, temperature, and single event effects was experimentally studied. Notably, we observed a previously unseen phenomenon, which we termed "frequency surge". This phenomenon is likely to have implications for the dosimeter's performance under real spacecraft conditions. Our findings show that the dosimeter is able to combine small power consumption with high dose resolution, but also highlight the need for testing against other radiation source types and intensities.
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