Choe Hyeok-Jun, Choi Yong, Hu Wei, Yan Jianhua, Ho Jung Jin
Department of Electronic Engineering, Sogang University, Seoul, Republic of Korea.
Phys Med Biol. 2017 Apr 7;62(7):N120-N133. doi: 10.1088/1361-6560/aa5f9b. Epub 2017 Mar 6.
There has been great interest in developing a time-of-flight (TOF) PET to improve the signal-to-noise ratio of PET image relative to that of non-TOF PET. Silicon photomultiplier (SiPM) arrays have attracted attention for use as a fast TOF PET photosensor. Since numerous SiPM arrays are needed to construct a modern human PET, a multiplexing method providing both good timing performance and high channel reduction capability is required to develop a SiPM-based TOF PET. The purpose of this study was to develop a capacitive multiplexing circuit for the SiPM-based TOF PET. The proposed multiplexing circuit was evaluated by measuring the coincidence resolving time (CRT) and the energy resolution as a function of the overvoltage using three different capacitor values of 15, 30, and 51 pF. A flood histogram was also obtained and quantitatively assessed. Experiments were performed using a [Formula: see text] array of [Formula: see text] mm SiPMs. Regarding the capacitor values, the multiplexing circuit using a smaller capacitor value showed the best timing performance. On the other hand, the energy resolution and flood histogram quality of the multiplexing circuit deteriorated as the capacitor value became smaller. The proposed circuit was able to achieve a CRT of [Formula: see text] ps FWHM and an energy resolution of 17.1[Formula: see text] with a pair of [Formula: see text] mm LYSO crystals using a capacitor value of 30 pF at an overvoltage of 3.0 V. It was also possible to clearly resolve a [Formula: see text] array of LYSO crystals in the flood histogram using the multiplexing circuit. The experiment results indicate that the proposed capacitive multiplexing circuit is useful to obtain an excellent timing performance and a crystal-resolving capability in the flood histogram with a minimal degradation of the energy resolution, as well as to reduce the number of the readout channels of the SiPM-based TOF PET detector.
人们对开发飞行时间(TOF)正电子发射断层扫描(PET)以提高PET图像相对于非TOF PET的信噪比产生了浓厚兴趣。硅光电倍增管(SiPM)阵列作为一种快速TOF PET光电传感器受到了关注。由于构建现代人体PET需要大量SiPM阵列,因此开发基于SiPM的TOF PET需要一种兼具良好定时性能和高通道缩减能力的复用方法。本研究的目的是为基于SiPM的TOF PET开发一种电容式复用电路。通过使用15、30和51 pF三种不同电容值测量符合分辨时间(CRT)和能量分辨率随过电压的变化,对所提出的复用电路进行了评估。还获得了泛光直方图并进行了定量评估。实验使用了[公式:见正文]阵列的[公式:见正文]毫米SiPM进行。关于电容值,使用较小电容值的复用电路显示出最佳定时性能。另一方面,随着电容值变小,复用电路的能量分辨率和泛光直方图质量会变差。所提出的电路在3.0 V过电压下使用30 pF的电容值,与一对[公式:见正文]毫米LYSO晶体配合时,能够实现[公式:见正文] ps半高宽的CRT和17.1[公式:见正文]的能量分辨率。使用复用电路还可以在泛光直方图中清晰分辨[公式:见正文]阵列的LYSO晶体。实验结果表明,所提出的电容式复用电路有助于在能量分辨率最小程度下降的情况下,在泛光直方图中获得出色的定时性能和晶体分辨能力,同时减少基于SiPM的TOF PET探测器的读出通道数量。