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利用多个表面提高固态核径迹探测器的能量动态范围。

Increasing the energy dynamic range of solid-state nuclear track detectors using multiple surfaces.

作者信息

Zylstra A B, Rinderknecht H G, Sinenian N, Rosenberg M J, Manuel M, Séguin F H, Casey D T, Frenje J A, Li C K, Petrasso R D

机构信息

Plasma Science and Fusion Center, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA.

出版信息

Rev Sci Instrum. 2011 Aug;82(8):083301. doi: 10.1063/1.3617475.

Abstract

Solid-state nuclear track detectors, such as CR-39, are widely used in physics and in many inertial confinement fusion (ICF) experiments. In the ICF experiments, the particles of interest, such as D(3)He-protons, have ranges of order of the detector thickness. In this case, the dynamic range of the detector can be extended by recording data on both the front and back sides of the detector. Higher energy particles which are undetectable on the front surface can then be measured on the back of the detector. Studies of track formation under the conditions on the front and back of the detector reveal significant differences. Distinct front and back energy calibrations of CR-39 are therefore necessary and are presented for protons. Utilizing multiple surfaces with additional calibrations can extend the range of detectable energies on a single piece of CR-39 by up to 7-8 MeV. The track formation process is explored with a Monte Carlo code, which shows that the track formation difference between front and back is due to the non-uniform ion energy deposition in matter.

摘要

固态核径迹探测器,如CR - 39,广泛应用于物理学以及许多惯性约束聚变(ICF)实验中。在ICF实验中,感兴趣的粒子,如D(3)He质子,其射程与探测器厚度处于同一数量级。在这种情况下,通过记录探测器正面和背面的数据,可以扩展探测器的动态范围。那些在前表面无法检测到的较高能量粒子,随后可以在探测器背面进行测量。对探测器正面和背面条件下径迹形成的研究揭示了显著差异。因此,CR - 39进行不同的正面和背面能量校准是必要的,本文给出了质子的校准结果。利用多个表面并进行额外校准,可以将单片CR - 39上可检测能量范围扩展至高达7 - 8兆电子伏特。通过蒙特卡罗代码探索了径迹形成过程,结果表明正面和背面径迹形成的差异是由于离子在物质中能量沉积不均匀所致。

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