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An ultra-thin Schottky diode as a transmission particle detector for biological microbeams

机译:一种超薄肖特基二极管作为生物微观辐射的透射粒子检测器

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摘要

We fabricated ultrathin metal-semiconductor Schottky diodes for use as transmission particle detectors in the biological microbeam at Columbia University’s Radiological Research Accelerator Facility (RARAF). The RARAF microbeam can deliver a precise dose of ionizing radiation in cell nuclei with sub-micron precision. To ensure an accurate delivery of charged particles, the facility currently uses a commercial charged-particle detector placed after the sample. We present here a transmission detector that will be placed between the particle accelerator and the biological specimen, allowing the irradiation of samples that would otherwise block radiation from reaching a detector behind the sample. Four detectors were fabricated with co-planar gold and aluminum electrodes thermally evaporated onto etched n-type crystalline silicon substrates, with device thicknesses ranging from 8.5 μm – 13.5 μm. We show coincident detections and pulse-height distributions of charged particles in both the transmission detector and the commercial detector above it. Detections are demonstrated at a range of operating conditions, including incoming particle type, count rate, and beam location on the detectors. The 13.5 μm detector is shown to work best to detect 2.7 MeV protons (H+), and the 8.5 μm detector is shown to work best to detect 5.4 MeV alpha particles (4He++). The development of a transmission detector enables a range of new experiments to take place at RARAF on radiation-stopping samples such as thick tissues, targets that need immersion microscopy, and integrated microfluidic devices for handling larger quantities of cells and small organisms.
机译:我们制造了超薄金属半导体肖特基二极管,用作哥伦比亚大学放射研究加速器设施(RARAF)的生物微束中的透射粒子检测器。 RARAF微束可以以亚微米精度在细胞核中提供精确剂量的电离辐射。为了确保带电粒子的准确传递,该设施目前使用放置在样品后面的商用带电粒子检测器。我们在这里介绍了一种透射检测器,该检测器将放置在粒子加速器和生物样本之间,以允许对样品进行辐照,否则它们将阻止辐射到达样品后面的检测器。四个探测器是用共面的金和铝电极热蒸发到蚀刻的n型晶体硅衬底上制成的,器件厚度范围为8.5μm– 13.5μm。我们在透射检测器和上方的商用检测器中均显示了带电粒子的重合检测和脉冲高度分布。在一系列操作条件下进行了检测,包括入射粒子类型,计数率和检测器上的光束位置。显示13.5μm的探测器最适合检测2.7 MeV质子(H + ),显示8.5μm的探测器最适合检测5.4 MeV的α粒子( 4 > He ++ )。透射检测器的发展使RARAF能够对辐射停止的样本(例如厚组织,需要浸没显微镜的目标以及用于处理大量细胞和小型生物的集成微流体装置)进行一系列新实验。

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