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Particle detection at cryogenic temperatures with undoped CsI

机译:使用未掺杂的CsI在低温下进行粒子检测

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Scintillators are widely used as particle detectors in particle physics. Scintillation at cryogenic temperatures can give rise to detectors with particle discrimination for rare-event searches such as dark matter detection. We present time-resolved scintillation studies of Cesium Iodide (CsI) under excitation of bothαandγparticles over a long acquisition window of 1 ms to fully capture the scintillation decay between room temperature and 4 K. This allows a measurement of the light yield independent of any shaping time of the pulse. We find the light yield of CsI to increase up to two orders of magnitude from that of room temperature at cryogenic temperatures, and the ratio ofαtoγexcitation to vary significantly, exceeding 1 over a range of temperatures between 10 and 100 K. This property could be useful in separatingαbackgrounds from the low energy nuclear recoil signal region. We also find the time structure of the emitted light to follow similar exponential decay time constants betweenαandγexcitation, with the temperature behavior consistent with a model of self-trapped exciton de-excitation. Based on these properties, undoped CsI is an interesting candidate for use in cryogenic particle detectors.
机译:闪烁体在粒子物理学中被广泛用作粒子检测器。低温下的闪烁会产生带有颗粒识别度的探测器,用于稀有事件的搜索,例如暗物质探测。我们目前在1ms的长采集窗口内在α和γ粒子激发下碘化铯(CsI)的时间分辨闪烁研究,以完全捕获室温和4K之间的闪烁衰减。这使得可以独立于任何形状来测量光输出脉冲时间。我们发现低温下CsI的光输出比室温高出两个数量级,并且α与γ的激发比发生显着变化,在10至100 K的温度范围内超过1.这种特性可能是有用的将背景从低能核后座力信号区中分离出来。我们还发现发射光的时间结构在α和γ激发之间遵循相似的指数衰减时间常数,其温度行为与自陷激子激发模型一致。基于这些特性,未掺杂的CsI是用于低温粒子检测器的有趣候选材料。

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