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硅光电倍增管:一种现代固态光子探测器的原理及应用。

The silicon photomultiplier: fundamentals and applications of a modern solid-state photon detector.

机构信息

UniMIB, Piazza dell'Ateneo Nuovo, 1 - 20126, Milano, Italy. CERN, Esplanade de Particules 1, 1211 Meyrin, Switzerland.

出版信息

Phys Med Biol. 2020 Aug 21;65(17):17TR01. doi: 10.1088/1361-6560/ab7b2d.

DOI:10.1088/1361-6560/ab7b2d
PMID:32109891
Abstract

The silicon photomultiplier (SiPM) is an established device of choice for a variety of applications, e.g. in time of flight positron emission tomography (TOF-PET), lifetime fluorescence spectroscopy, distance measurements in LIDAR applications, astrophysics, quantum-cryptography and related applications as well as in high energy physics (HEP). To fully utilize the exceptional performances of the SiPM, in particular its sensitivity down to single photon detection, the dynamic range and its intrinsically fast timing properties, a qualitative description and understanding of the main SiPM parameters and properties is necessary. These analyses consider the structure and the electrical model of a single photon avalanche diode (SPAD) and the integration in an array of SPADs, i.e. the SiPM. The discussion will include the front-end readout and the comparison between analog-SiPMs, where the array of SPADs is connected in parallel, and the digital SiPM, where each SPAD is read out and digitized by its own electronic channel. For several applications a further complete phenomenological view on SiPMs is necessary, defining several SiPM intrinsic parameters, i.e. gain fluctuation, afterpulsing, excess noise, dark count rate, prompt and delayed optical crosstalk, single photon time resolution (SPTR), photon detection effieciency (PDE) etc. These qualities of SiPMs influence directly and indirectly the time and energy resolution, for example in PET and HEP. This complete overview of all parameters allows one to draw solid conclusions on how best performances can be achieved for the various needs of the different applications.

摘要

硅光电倍增管(SiPM)是一种成熟的选择,适用于各种应用,例如在飞行时间正电子发射断层扫描(TOF-PET)、寿命荧光光谱学、激光雷达应用中的距离测量、天体物理学、量子密码学和相关应用以及高能物理学(HEP)中。为了充分利用 SiPM 的优异性能,特别是其对单光子检测的灵敏度、动态范围及其固有的快速定时特性,需要对 SiPM 的主要参数和特性进行定性描述和理解。这些分析考虑了单个光子雪崩二极管(SPAD)的结构和电模型以及在 SPAD 阵列(即 SiPM)中的集成。讨论将包括前端读出以及模拟 SiPM 的比较,其中 SPAD 阵列并联连接,以及数字 SiPM,其中每个 SPAD 由其自己的电子通道读出和数字化。对于几种应用,需要进一步全面地了解 SiPM,定义几个 SiPM 固有参数,例如增益波动、后脉冲、过剩噪声、暗计数率、瞬态和延迟光串扰、单光子时间分辨率(SPTR)、光子探测效率(PDE)等。这些 SiPM 的质量直接和间接地影响时间和能量分辨率,例如在 PET 和 HEP 中。对所有参数的全面概述可以得出关于如何为不同应用的各种需求实现最佳性能的可靠结论。

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