Georgiou Maria, Borghi Giacomo, Spirou Spiridon V, Loudos George, Schaart Dennis R
Technological Educational Institute of Athens, Department of Biomedical Technology Engineering, Ag. Spiridonos 28, 12210, Egaleo, Athens, Greece.
Phys Med Biol. 2014 May 21;59(10):2415-30. doi: 10.1088/0031-9155/59/10/2415. Epub 2014 Apr 17.
The digital photon counter (DPC) is a recently developed type of digital silicon photomultiplier that combines low dark count rates, low readout noise, and fully digital, integrated readout circuitry with neighbor logic capability, system scalability, and MR compatibility. These are desirable properties for application in scintillation detectors for single photon emission computed tomography (SPECT). In this work, the feasibility of using a DPC array in combination with a CsI(Tl) crystal matrix as a potential detector for SPECT is investigated for the first time. Given the relatively long decay time of CsI(Tl), an important consideration is the influence on the detector performance of the DPC dark count rate as a function of temperature. We present a preliminary characterization of a detector assembled with an array of 2 × 2 × 3 mm(3) CsI(Tl) crystals. Preparatory measurements were acquired with a (57)Co source in order to optimize the light-guide thickness and the sensor settings. The spatial resolution of the detector was tested by acquiring flood maps with (57)Co as well as (99m)Tc sources. Three crystal identification algorithms were compared for the reconstruction of the flood maps. All crystal elements could be visualized clearly and high values of peak-to-valley ratios were achieved. Energy resolutions of ∼18.5% FWHM and ∼15% FWHM were measured at 122 keV and 140 keV, respectively. Temperature-dependent measurements indicate that the detector can work satisfactorily up to about 15 °C.
数字光子计数器(DPC)是一种最近开发的数字硅光电倍增器,它结合了低暗计数率、低读出噪声以及具有相邻逻辑功能、系统可扩展性和磁共振兼容性的全数字集成读出电路。这些特性对于单光子发射计算机断层扫描(SPECT)闪烁探测器的应用来说是很理想的。在这项工作中,首次研究了将DPC阵列与CsI(Tl)晶体矩阵结合用作SPECT潜在探测器的可行性。鉴于CsI(Tl)的衰变时间相对较长,一个重要的考虑因素是DPC暗计数率随温度变化对探测器性能的影响。我们展示了一个由2×2×3 mm³ CsI(Tl)晶体阵列组装而成的探测器的初步特性。使用⁵⁷Co源进行了预备测量,以优化光导厚度和传感器设置。通过使用⁵⁷Co以及⁹⁹ᵐTc源获取泛光图来测试探测器的空间分辨率。比较了三种晶体识别算法用于泛光图的重建。所有晶体元件都能清晰可视化,并且实现了较高的峰谷比。在122 keV和140 keV处分别测量到的能量分辨率约为18.5% FWHM和15% FWHM。与温度相关的测量表明,该探测器在高达约15°C的温度下仍能令人满意地工作。