基于ppo的电磁量热法在低温下工作

P. Orsich, K. Brinkmann, V. Dormenev, M. Korzhik, V. Mechinsky, D. Kozlov, H. Zaunick
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摘要

在闪烁光谱范围内,闪烁晶体在电离辐射下的透光率下降,导致光输出的损失,从而导致能量分辨率的下降,限制了由闪烁体制成的量热计的工作时间。这种效应对于在低温下工作的量热计尤其突出。使用钨酸铅闪烁晶体PbWO4在-20至-45°C的低温量热法中,其闪烁产额增加了三倍,这使得能量分辨率显著提高,最高可达10 MeV。保持这一特征对强子光谱学至关重要。然而,随着PbWO4晶体温度的降低,电离辐射下产生的色心自发弛豫速率明显减慢,这使得高能物理实验长期辐照下诱导吸收的动态水平向更高的值移动。用不同波长的红外光子照射样品,比较了闪烁光谱区诱导吸收的自发弛豫和受激弛豫。结果表明,色心的松弛可以加速一千倍。因此,恢复刺激允许在波束关闭期间或在线数据采集时快速有效地原位恢复晶体光学透射率。该应用程序可以通过将辐射损伤保持在可容忍的水平,大大改善或延长基于ppo的量热计在低温下的运行周期。
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PWO based electromagnetic calorimetry to operate at a low temperature
The degradation of the optical transmittance under ionising radiation of the scintillation crystal in the scintillation spectral range leads to the losses of the light output, which results in the deterioration of the energy resolution and limits the operation time of the calorimeter made of the scintillator. This effect is especially prominent for calorimeters operating at a low temperature. The use of a lead tungstate scintillation crystal PbWO4 in calorimetry at a low temperature in the range from –20 to –45 °C provides a threefold increase in its scintillation yield, which causes a significant improvement in the energy resolution in the range up to 10 MeV. Keep on this feature is critically important for hadron spectroscopy. However, as the temperature of the PbWO4 crystal is lowered, the rate of spontaneous relaxation of colour centers created under ionising radiation significantly slows down, which shifts the dynamic level of the induced absorption towards a higher value under long-term irradiation of high-energy physics experiments. A comparison is made of the spontaneous relaxation of induced absorption in the spectral region of scintillations with stimulated relaxation upon irradiation of samples by infrared photons of different wavelengths. It is shown that the relaxation of colour centers can be accelerated up to one thousand times. Thus, recovery stimulation allows fast and efficient in situ recovery of the crystal optical transmittance either at beam-off periods or online at data acquisition. The application can substantially improve or extend the running period of the PWO based calorimeters at low temperatures by keeping the radiation damage at a tolerable level.
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