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Ultracold neutron detectors based on ~(10)B converters used in the qBounce experiments

机译:qBounce实验中使用的基于〜(10)B转换器的超冷中子探测器

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摘要

Gravity experiments with very slow, so-called ultracold neutrons connect quantum mechanics with tests of Newton's inverse square law at short distances. These experiments face a low count rate and hence need highly optimized detector concepts. In the frame of this paper, we present low-background ultracold neutron counters and track detectors with micron resolution based on a ~(10)B converter. We discuss the optimization of ~(10)B converter layers, detector design and concepts for read-out electronics focusing on high-efficiency and low-background. We describe modifications of the counters that allow one to detect ultracold neutrons selectively on their spin-orientation. This is required for searches of hypothetical forces with spin-mass couplings. The mentioned experiments utilize a beam-monitoring concept which accounts for variations in the neutron flux that are typical for nuclear research facilities. The converter can also be used for detectors, which feature high efficiencies paired with high spatial resolution of 1-2 μm. They allow one to resolve the quantum mechanical wave function of an ultracold neutron bound in the gravity potential above a neutron mirror.
机译:用非常慢的所谓超冷中子进行的引力实验将量子力学与牛顿反平方定律的短距离测试联系起来。这些实验面临的计数率较低,因此需要高度优化的检测器概念。在本文的框架中,我们提出了一种基于〜(10)B转换器的微米级分辨率的低本底超冷中子计数器和轨道探测器。我们讨论了〜(10)B转换器层的优化,检测器设计和针对高效和低背景的读出电子设备的概念。我们描述了计数器的修改,这些修改允许人们在自旋方向上选择性地检测超冷中子。这对于使用自旋-质量耦合搜索假设力是必需的。提到的实验利用了束流监视概念,该概念可以解释核研究设施中典型的中子通量变化。该转换器还可用于检测器,该检测器具有高效率和1-2μm的高空间分辨率。它们使人们能够解析在中子镜上方的重力势中束缚的超冷中子的量子力学波函数。

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