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无铅 MCP 可提高符合时间分辨率并减少 MCP 直接相互作用。

Lead-free MCP to improve coincidence time resolution and reduce MCP direct interactions.

机构信息

Central Research Laboratory, Hamamatsu Photonics K. K., Hamamatsu, Japan.

Graduate School of Engineering, University of Fukui, Fukui, Japan.

出版信息

Phys Med Biol. 2021 Mar 17;66(6):064006. doi: 10.1088/1361-6560/abea2c.

DOI:10.1088/1361-6560/abea2c
PMID:33636710
Abstract

Achieving direct imaging of the annihilation position of a positron on an event-by-event basis using an ultrafast detector would have a great impact on the field of nuclear medicine. Cherenkov emission is the most attractive physical phenomenon for realizing such an ultrafast timing performance. Moreover, a microchannel-plate photomultiplier tube (MCP-PMT) is one of the most promising photodetectors for fully exploiting the fast timing properties of Cherenkov emission owing to its excellent single photon time resolution of 25 ps full width at half maximum (FWHM). However, as the MCP structure generally contains a lead compound, the gamma rays frequently and directly interact with the MCP, resulting in the degradation of its timing performance and generation of undesirable side peaks in its coincidence timing histogram. To overcome this problem, we have developed a new MCP-PMT based on an MCP consisting of borosilicate glass, thus drastically reducing the probability of the photoelectric effect occurring in the MCP. To evaluate its insensitivity to gamma rays and its timing performance, a coincidence experiment was performed and showed that the probability of direct interactions was reduced by a factor of 3.4. Moreover, a coincidence time resolution of 35.4 ± 0.4 ps FWHM, which is equivalent to a position resolution of 5.31 mm, was obtained without any pulse height/area cut, improving to 28.7 ± 3.0 ps when selecting on the highest amplitude events by careful optimization of the voltage divider circuit of the new MCP-PMT. The timing performance of this new MCP-PMT presents an important step toward making direct imaging possible.

摘要

利用超快探测器实现正电子湮没位置的逐事件直接成像,将对核医学领域产生重大影响。切伦科夫发射是实现这种超快定时性能的最具吸引力的物理现象。此外,微通道板光电倍增管(MCP-PMT)是最有前途的光电探测器之一,由于其出色的单光子时间分辨率为 25 ps 半高全宽(FWHM),可以充分利用切伦科夫发射的快速定时特性。然而,由于 MCP 结构通常包含铅化合物,伽马射线经常直接与 MCP 相互作用,导致其定时性能下降,并在其符合定时直方图中产生不希望的侧峰。为了解决这个问题,我们开发了一种基于由硼硅酸盐玻璃制成的 MCP 的新型 MCP-PMT,从而大大降低了 MCP 中光电效应发生的概率。为了评估其对伽马射线的不敏感性及其定时性能,进行了符合实验,结果表明直接相互作用的概率降低了 3.4 倍。此外,获得了 35.4 ± 0.4 ps FWHM 的符合时间分辨率,相当于 5.31 mm 的位置分辨率,无需任何脉冲高度/面积切割,如果通过仔细优化新型 MCP-PMT 的分压电路选择最高幅度事件,则可以提高到 28.7 ± 3.0 ps。这种新型 MCP-PMT 的定时性能朝着实现直接成像迈出了重要一步。

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