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Brain functional imaging at small source-detector distances based on fast-gated Single-Photon Avalanche Diodes

机译:基于快速门控单光子雪崩二极管的小源探测器距离的脑功能成像

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In this work we focused on time-resolved measurements in diffusive media performed at small (few millimeters) source-detector distances in reflectance geometry. This configuration has been predicted to have better contrast, better spatial resolution, and lower noise than the typical measurements performed at few centimeters. In our instrumental set-up we exploited a fast-gating (rise-time < 400 ps) front-end electronics enabling a silicon Single-Photon Avalanche Diode (SPAD) for time-correlated single-photon counting. By means of this detector, we can acquire "late" photons of the diffused light collected 2 mm apart from the injection point. This is possible because the fast gated SPAD rejects the huge amount of "early" photons which otherwise would saturate the detection electronic chain. The time resolution of the set-up is 100 ps. The instrument has been validated on both homogeneous and inhomogeneous (high absorbing inclusion at different depths inside) tissue phantoms with different optical properties. We obtained diffused time-resolved curves with dynamic ranges of about 107. Moreover, we demonstrated good agreement between the measured time-resolved contrasts and those calculated by Monte Carlo numerical simulations.
机译:在这项工作中,我们专注于在漫反射介质中以很小(几毫米)的源-探测器距离进行的扩散介质中的时间分辨测量。与在几厘米处执行的典型测量相比,已预测该配置具有更好的对比度,更好的空间分辨率和更低的噪声。在我们的仪器设置中,我们利用了快速门控(上升时间<400 ps)前端电子设备,该电子设备采用硅单光子雪崩二极管(SPAD)进行时间相关的单光子计数。通过该检测器,我们可以获得与注入点相距2 mm的散射光的“晚期”光子。这是可能的,因为快速门控的SPAD会拒绝大量的“早期”光子,否则这些光子会使检测电子链饱和。设置的时间分辨率为100 ps。该仪器已在具有不同光学特性的均质和不均质(内部不同深度的高吸收性包裹体)模型上得到验证。我们获得了动态范围约为107的扩散时间分辨曲线。此外,我们证明了所测得的时间分辨对比度与通过蒙特卡洛数值模拟计算得出的吻合良好。

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