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Precision Electron-Beam Polarimetry at 1?GeV Using Diamond Microstrip Detectors

机译:精密电子束偏振物在1?GEV使用金刚石微带探测器

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We report on the highest precision yet achieved in the measurement of the polarization of a low-energy, O ( 1 GeV ) , continuous-wave (CW) electron beam, accomplished using a new polarimeter based on electron-photon scattering, in Hall C at Jefferson Lab. A number of technical innovations were necessary, including a novel method for precise control of the laser polarization in a cavity and a novel diamond microstrip detector that was able to capture most of the spectrum of scattered electrons. The data analysis technique exploited track finding, the high granularity of the detector, and its large acceptance. The polarization of the 180 ? μ A , 1.16-GeV electron beam was measured with a statistical precision of 1 % per hour and a systematic uncertainty of 0.59%. This exceeds the level of precision required by the Q weak experiment, a measurement of the weak vector charge of the proton. Proposed future low-energy experiments require polarization uncertainty 0.4 % , and this result represents an important demonstration of that possibility. This measurement is the first use of diamond detectors for particle tracking in an experiment. It demonstrates the stable operation of a diamond-based tracking detector in a high radiation environment, for two years.
机译:我们报告了在测量低能量,O(1 GEV),连续波(CW)电子束的测量中实现的最高精度,该偏振,基于电子 - 光子散射,在HALL C中使用新的偏振仪完成在杰斐逊实验室。需要许多技术创新,包括一种新的方法,用于精确控制腔中的激光偏振和新型金刚石微带探测器,其能够捕获大部分散射电子的光谱。数据分析技术利用轨道查找,探测器的高粒度,以及其大的验收。 180的极化?测量μ,1.16-GEV电子束,每小时1%的统计精度和系统不确定性为0.59%。这超出了Q弱实验所需的精度水平,测量质子的弱矢量电荷。拟议的未来低能量实验需要极化不确定性<0.4%,而该结果代表了这种可能性的重要展示。该测量是在实验中首次使用金刚石探测器进行粒子跟踪。它展示了在高辐射环境中钻石的跟踪探测器的稳定运行两年。

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