School of Health Sciences, Purdue University, West Lafayette, IN, USA.
Physiol Meas. 2013 Dec;34(12):1593-609. doi: 10.1088/0967-3334/34/12/1593. Epub 2013 Oct 28.
This study was conducted to investigate the methodology and feasibility of developing a transportable neutron activation analysis (NAA) system to quantify manganese (Mn) in bone using a portable deuterium-deuterium (DD) neutron generator as the neutron source. Since a DD neutron generator was not available in our laboratory, a deuterium-tritium (DT) neutron generator was used to obtain experimental data and validate the results from Monte Carlo (MC) simulations. After validation, MC simulations using a DD generator as the neutron source were then conducted. Different types of moderators and reflectors were simulated, and the optimal thicknesses for the moderator and reflector were determined. To estimate the detection limit (DL) of the system, and to observe the interference of the magnesium (Mg) γ line at 844 keV to the Mn γ line at 847 keV, three hand phantoms with Mn concentrations of 30 parts per million (ppm), 150 ppm, and 500 ppm were made and irradiated by the DT generator system. The Mn signals in these phantoms were then measured using a 50% high-efficiency high-purity germanium (HPGe) detector. The DL was calculated to be about 4.4 ppm for the chosen irradiation, decay, and measurement time. This was calculated to be equivalent to a DL of about 3.3 ppm for the DD generator system. To achieve this DL with one 50% high-efficiency HPGe detector, the dose to the hand was simulated to be about 37 mSv, with the total body equivalent dose being about 23µSv. In conclusion, it is feasible to develop a transportable NAA system to quantify Mn in bone in vivo with an acceptable radiation exposure to the subject.
本研究旨在探讨开发一种可携式中子活化分析(NAA)系统的方法学和可行性,以使用便携式氘氘(DD)中子发生器作为中子源来定量测量骨骼中的锰(Mn)。由于我们实验室没有 DD 中子发生器,因此使用氘氚(DT)中子发生器来获取实验数据并验证蒙特卡罗(MC)模拟的结果。验证后,使用 DD 发生器作为中子源进行 MC 模拟。模拟了不同类型的慢化剂和反射器,并确定了慢化剂和反射器的最佳厚度。为了估算系统的检测限(DL),并观察 844keV 的镁(Mg)γ线对 847keV 的 Mn γ线的干扰,制作了三个 Mn 浓度分别为 30ppm、150ppm 和 500ppm 的手部 phantom,并使用 DT 发生器系统进行辐照。然后使用 50%高效高纯锗(HPGe)探测器测量这些 phantom 中的 Mn 信号。选择辐照、衰减和测量时间后,计算出的 DL 约为 4.4ppm。这相当于 DD 发生器系统的 DL 约为 3.3ppm。为了在一个 50%高效 HPGe 探测器下实现这一 DL,对手部的剂量进行了模拟,约为 37mSv,全身当量剂量约为 23µSv。总之,使用可接受的受试者辐射暴露量,开发一种可携式 NAA 系统来定量测量体内骨骼中的 Mn 是可行的。