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The SiPM revolution in time-domain diffuse optics

机译:时域漫射光学中的SIPM革命

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摘要

Time-domain diffuse optics is a powerful non-invasive, non-ionizing and label-free technique based on the use of picosecond pulsed laser light to probe highly scattering media like biological tissues down to a depth of few centimeters to obtain functional and compositional information. This technique is opening new perspectives in various fields spanning from oncology (e.g. characterization of breast or thyroid lesions, etc.) to neurology (e.g. diagnosis and monitoring of traumatic brain injuries, functional brain imaging, etc.), as well as in non-biomedical fields (e.g. characterization of fruits, wood, etc.). Time-domain diffuse optics is nowadays undergoing fascinating technology advancements, permitting for the first time the design of low-cost compact/wearable high performance systems. This revolution has been made possible also taking advantage from Silicon PhotoMultiplier (SiPM) progresses, originally driven by other applications, since time-domain diffuse optics is highly demanding in terms of performance, in particular requiring single-photon detectors with large collection area, high fill-factor, high single-photon timing resolution, low power dissipation and compact high-throughput front-end electronics. This work will review the recent advancements introduced by SiPMs in time-domain diffuse optics, mostly thanks to the support of different running EU H2020 projects (e.g. SOLUS -G.A.731877-, LUCA -G.A.688303-, BITMAP -G.A.675332-, ATTRACT -G.A.777222-, Laserlab-Europe -G.A.654148-), showing their present performances in this field, the inherent advantages that allowed the design of innovative diffuse optical imaging systems, as well as highlighting their present limitations in order to push forward the research towards the perfect SiPM for time-domain diffuse optics.
机译:时域漫射光学是一种强大的无侵入性,非电离和无标签和无标签技术,基于使用PICOSECOND脉冲激光来探测高度散射的介质,如生物组织下降到几厘米的深度,以获得功能性和组成信息。该技术正在从肿瘤学(例如乳房或甲状腺病变等特征)跨越肿瘤学(例如乳腺或甲状腺病变等)的新视角(例如,诊断和监测创伤性脑损伤,功能性脑成像等),以及非生物医学领域(例如水果,木材等特征)。现在正在进行迷人的技术进步时代的时域漫射光学器件,允许首次设计低成本紧凑/可穿戴高性能系统。这种革命也是可能的,也可以从硅光电倍增管(SIPM)中获得,原本是由其他应用驱动的进展,因为时域漫射光学器件在性能方面非常苛刻,特别是需要具有大收集区域的单光子探测器,高填充因子,高单光子定时分辨率,低功耗和紧凑的高吞吐量前端电子设备。这项工作将审查SIPMS在时域漫射光学中引入的最新进步,主要是由于不同运行欧盟H2020项目的支持(例如Solus -GA731877-,Luca-Ga68303-,Bitmap-Ga675332-,吸引 - GA777222-,LaserLab-Europe-Ga654148-),显示他们在该领域的现状,允许创新漫射光学成像系统的内在的特性,以及突出显示其目前的限制,以便向前推进研究时域漫射光学器件的完美SIPM。

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