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Mechanisms of luminescence decay in YAG-Ce,Mg fibers excited by γ- and X-rays

机译:YAG-Ce,Mg纤维受γ和X射线激发的发光衰减机理

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摘要

Time-resolved luminescence of YAG-Ce (150 ppm) fiber crystal with Mg co-doping was studied under pulsed X-ray excitation and gamma-rays (Cs 662 keV). The initial part of decay kinetics under X-ray excitation is faster than for direct cerium excitation (63 ns). Decay kinetics is also characterized by the presence of slow components with at least two characteristic times longer than Ce3+ radiation time. The slowest one which dominates for t 500 ns in YAG-Ce without Mg co-doping practically vanishes for samples with 50 ppm co-doping. Decay kinetics under gamma-rays are characterized by slower rise time than that under X-rays. These properties can be explained by competition of energy transfer and energy losses in track regions. The distribution of excitations in tracks produced by X-rays differs from that in tracks produced by gamma-rays, since the energy of primary electron after gamma-quantum conversion is much higher than after X-ray absorption. The stopping power for energetic electrons decreases with increase of electron energy, and therefore the density distribution after X-ray conversion is shifted to higher densities, Therefore, the acceleration of recombination and quenching of excitations is more prominent under X-ray excitation. Specific role of Ce4+ induced by Mg co-doping is also discussed in the paper.
机译:在脉冲X射线激发和伽马射线(Cs 662 keV)下研究了掺Mg的YAG-Ce(150 ppm)纤维晶体的时间分辨发光。在X射线激发下,衰减动力学的初始部分要比直接铈激发(63 ns)快。衰减动力学的特征还在于慢速组分的存在,其特征特征至少比Ce3 +辐射时间长两个特征时间。在YAG-Ce中,最慢的一个在不掺Mg的情况下在tAG> 500 ns时占主导地位,而对于掺有50 ppm的样品,它几乎消失了。伽马射线下的衰变动力学的特征在于上升时间比X射线下的上升时间慢。这些特性可以通过轨道区域中能量转移和能量损失的竞争来解释。 X射线产生的磁道中的激发分布与伽马射线产生的磁道中的激发分布不同,因为伽马量子转换后的一次电子能量比X射线吸收后的电子高得多。随着电子能量的增加,高能电子的阻止能力降低,因此X射线转换后的密度分布转移到更高的密度,因此,在X射线激发下,复合的加速和激发的猝灭更为明显。本文还讨论了镁共掺杂诱导的Ce4 +的特殊作用。

著录项

  • 来源
    《Optical Materials》 |2019年第6期|341-346|共6页
  • 作者单位

    Univ Lyon 1, Inst Light & Matter, CNRS, UMR5306, Villeurbanne, France|Univ Bordeaux, CNRS, CEA, CELIA, Talence, France;

    Univ Lyon 1, Inst Light & Matter, CNRS, UMR5306, Villeurbanne, France;

    NAS Ukraine, Inst Scintillat Mat, Kharkov, Ukraine;

    NAS Ukraine, Inst Scintillat Mat, Kharkov, Ukraine;

    NAS Ukraine, Inst Scintillat Mat, Kharkov, Ukraine;

    European Org Nucl Res, Geneva, Switzerland;

    Moscow MV Lomonosov State Univ, Inst Nucl Phys, Moscow, Russia;

    Moscow MV Lomonosov State Univ, Inst Nucl Phys, Moscow, Russia;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Scintillation materials; YAG-Ce; Co-doping; Energy transfer; Track region density distribution;

    机译:闪烁材料;YAG-CE;共掺杂;能量转移;轨道区域密度分布;

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