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首页> 外文期刊>Nuclear Instruments & Methods in Physics Research. Section A, Accelerators, Spectrometers, Detectors and Associated Equipment >Reduced γ-γ time walk to below 50 ps using the multiplexed-start and multiplexed-stop fast-timing technique with LaBr_3(Ce) detectors
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Reduced γ-γ time walk to below 50 ps using the multiplexed-start and multiplexed-stop fast-timing technique with LaBr_3(Ce) detectors

机译:使用LaBr_3(Ce)检测器的多路复用启动和多路复用停止快速定时技术将γ-γ时间步移降低至50 ps以下

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摘要

The electronic γ-γ fast-timing technique using arrays consisting of many LaBr_3(Ce) detectors is a powerful method to determine lifetimes of nuclear excited states with a lower limit of about 5 ps. This method requires the determination of the energy-dependent time walk of the zero time which is represented by the centroid of a prompt γ-γ time distribution. The full-energy peak versus full-energy peak prompt response difference which represents the linearly combined mean γ-γ time walk of a fast-timing array consisting of 8 LaBr_3(Ce) detectors was measured using a standard ~(152)Eu γ-ray source for the energy region of 40-1408 keV. The data were acquired using a "multiplexed-start and multiplexed-stop" analogue electronics circuitry and analysed by employing the generalized centroid difference method. Concerning the cylindrical 1.5 in. × 1.5 in. LaBr_3(Ce) crystals which are coupled to the Hamamatsu R9779 photomultiplier tubes, the best fast-timing array time resolution of 202(3) ps is obtained for the two prompt γ lines of ~(60)Co by using the leading-edge timing principle. When using the zero-crossover timing principle the time resolution is degraded by up to 30%, dependent on the energy and the shaping delay time of the constant fraction discriminator model Ortec 935. The smallest γ-γ time walk to below 50 ps is obtained by using a shaping delay time of about 17 ns and an optimum "time-walk adjustment" needed for detector output pulses with amplitudes smaller than 400 mV.
机译:使用由许多LaBr_3(Ce)检测器组成的阵列的电子γ-γ快速定时技术是一种确定下限约为5 ps的核激发态寿命的有效方法。该方法需要确定零时间的能量相关时间步长,该时间步长由迅速的γ-γ时间分布的质心表示。使用标准〜(152)Euγ-测量了由8个LaBr_3(Ce)检测器组成的快速定时阵列的线性组合平均γ-γ时间游程的全能峰与全能峰的瞬态响应差异。射线源的能量范围为40-1408 keV。使用“多路启动和多路停止”模拟电子电路获取数据,并采用广义质心差方法进行分析。关于耦合到Hamamatsu R9779光电倍增管的圆柱形1​​.5 in。×1.5 in。LaBr_3(Ce)晶体,对于〜()的两条快速γ线,可获得202(3)ps的最佳快速定时阵列时间分辨率。 60)Co采用前沿计时原理。当使用零交叉定时原理时,时间分辨率最高可降低30%,具体取决于恒定分数鉴别器模型Ortec 935的能量和整形延迟时间。获得的最小γ-γ时间步距低于50 ps通过使用约17 ns的整形延迟时间和振幅小于400 mV的检测器输出脉冲所需的最佳“时程调节”。

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    Institut fuer Kernphysik der Universitaet zu Koeln, Zuelpicher Str. 77, 50937 Koeln, Germany;

    Institut fuer Kernphysik der Universitaet zu Koeln, Zuelpicher Str. 77, 50937 Koeln, Germany;

    Institut fuer Kernphysik der Universitaet zu Koeln, Zuelpicher Str. 77, 50937 Koeln, Germany,Department of Physics, University of Surrey, Guildford GU2 7XH, United Kingdom;

    Institut fuer Kernphysik der Universitaet zu Koeln, Zuelpicher Str. 77, 50937 Koeln, Germany;

    Institut fuer Kernphysik der Universitaet zu Koeln, Zuelpicher Str. 77, 50937 Koeln, Germany;

    Institut fuer Kernphysik der Universitaet zu Koeln, Zuelpicher Str. 77, 50937 Koeln, Germany;

    Institut fuer Kernphysik der Universitaet zu Koeln, Zuelpicher Str. 77, 50937 Koeln, Germany;

    Institut fuer Kernphysik der Universitaet zu Koeln, Zuelpicher Str. 77, 50937 Koeln, Germany;

    Institut fuer Kernphysik der Universitaet zu Koeln, Zuelpicher Str. 77, 50937 Koeln, Germany;

    Institut fuer Kernphysik der Universitaet zu Koeln, Zuelpicher Str. 77, 50937 Koeln, Germany;

    Institut fuer Kernphysik der Universitaet zu Koeln, Zuelpicher Str. 77, 50937 Koeln, Germany;

    Institut fuer Kernphysik der Universitaet zu Koeln, Zuelpicher Str. 77, 50937 Koeln, Germany;

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  • 正文语种 eng
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  • 关键词

    Lifetime measurements; The GCD method; Time walk; LaBr_3(Ce) scintillators;

    机译:寿命测量;GCD方法;时间漫步;LaBr_3(Ce)闪烁体;

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