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Developing the Recoil Distance Doppler-Shift technique towards a versatile tool for lifetime measurements of excited nuclear states

机译:将反冲距离多普勒频移技术发展为一种用于测量激发核态寿命的多功能工具

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In this article, the Recoil Distance Doppler-Shift (RDDS) method which is extensively used in nuclear structure physics to determine level lifetimes and absolute transition probabilities is reviewed. Especially, it is aimed to present new developments and variants of the technique which have evolved mainly in the past 25 years. After a short and comprehensive description of the basic elements of the plunger technique, the new variants are presented. This comprises the RDDS technique using γγ-coincidences, RDDS measurements in combination with particle detectors for selecting specific reaction channels, RDDS after Coulomb excitation, RDDS after fission and RDDS using a gas target. In addition, the concept of a differential plunger is discussed with respect to its specific features and typical experimental setups. Examples of differential plunger measurements with recoil tagging, recoil decay tagging and after deep inelastic reactions, Coulomb excitation in inverse reaction kinematics as well as after reactions with fast radioactive beams at energies of 50-100 MeV/u are given. The second focus of the review is dedicated to today's plunger devices and related hardware. The concepts of specific plunger devices which accommodate the specific demands of the aforementioned RDDS applications including specific feedback systems for controlling target-stopper/degrader separations in-beam are presented. Also discussed are target and stopper/degrader foil related issues like foil preparation, mounting and stretching as well as specific features of the foil behavior in-beam (temperature, blistering, wrinkling and carbon build-up). The third focus is devoted to the data analysis. The concept of the Differential Decay Curve Method (DDCM) is presented as an alternative approach for the analysis of RDDS data measured as singles or as γγ-coincidences. For the latter, different gating possibilities are discussed, e.g. gating from above and gating from below the level of interest and gating on fractional components. Finally, the simulation of line-shapes and its application is presented.
机译:在本文中,回顾了在核结构物理学中广泛使用的后坐距离多普勒频移(RDDS)方法来确定液位寿命和绝对跃迁概率。特别是,其目的是介绍主要在过去25年中发展起来的技术的新发展和变体。在对柱塞技术的基本要素进行简短而全面的描述之后,将介绍新的变体。这包括使用γ-巧合的RDDS技术,结合颗粒检测器以选择特定反应通道的RDDS测量,库仑激发后的RDDS,裂变后的RDDS和使用气体靶的RDDS。此外,还针对差动柱塞的具体功能和典型的实验装置进行了讨论。给出了使用反冲标签,反冲衰减标签以及在深部非弹性反应,逆反应运动学中的库仑激发以及在能量为50-100 MeV / u的快速放射性束反应后进行差分柱塞测量的示例。审查的第二个重点是致力于当今的柱塞设备和相关硬件。提出了满足上述RDDS应用的特定需求的特定柱塞设备的概念,包括用于控制光束中的目标塞子/降解剂分离的特定反馈系统。还讨论了与目标和塞子/降解器箔相关的问题,例如箔的制备,安装和拉伸,以及梁中箔行为的特定特征(温度,起泡,起皱和积碳)。第三个重点是数据分析。提出了“微分衰减曲线法”(DDCM)的概念,作为分析RDDS数据(作为单值或γγ重合测量)的替代方法。对于后者,讨论了不同的门控可能性,例如。从感兴趣级别的上方进行门控,从感兴趣级别的下方进行门控,并对分数部分进行门控。最后,介绍了线形的仿真及其应用。

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