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Energy-resolved coincidence counting using an FPGA for nuclear lifetime experiments

机译:使用FPGA进行能量分辨重合计数核寿命实验

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With the increasing availability of single-board computers equipped with fast analog-to-digital converters based on field-programmable gate arrays (FPGA), researchers and educators gain access to relatively inexpensive hardware that can be programmed for advanced coincidence counting. We demonstrate this capability by developing software for a dual-channel open-source data acquisition platform, enabling it to perform energy- and time-resolved coincidence counting and testing our system using an Am-241 source. Measuring the coincidence between alpha and gamma radiation allowed us to determine the half-life of the Np-237 excited state. The obtained value of 67.7 +/- 0.1 ns is compatible with the value cited in the literature. Furthermore, the use of digital signal processing enabled us to sort time-resolved counts by alpha and gamma energy, which resulted in additional information on the decay scheme. Correlation heatmaps between the two spectra were plotted and used to verify the decay scheme. The half-lives of the other features visible in the gamma spectrum were determined as well.
机译:随着基于现场可编程门阵列(FPGA),研究人员和教育工作者的单板计算机的可用性,配备了基于现场可编程的门阵列(FPGA),可以访问相对廉价的硬件,可以编程用于高级巧合计数。我们通过开发双通道开源数据采集平台软件来展示这种能力,使其能够使用AM-241源执行能源和时间分辨的巧合计数和测试我们的系统。测量α和伽马辐射之间的巧合允许我们确定NP-237激发状态的半衰期。所获得的值为67.7 +/- 0.1 ns与文献中引用的值相容。此外,使用数字信号处理使我们能够通过alpha和伽马能量对α和伽马能量进行排序,这导致了关于衰减方案的附加信息。绘制了两个光谱之间的相关热量和用于验证衰减方案。还确定了伽马光谱中可见的其他特征的半衰期。

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