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优化光子捕获:基于非晶硅的微通道板的进展

Optimizing photon capture: advancements in amorphous silicon-based microchannel plates.

作者信息

Frey Samira, Antognini Luca, Benserhir Jad, Ripiccini Emanuele, de Koning Coenraad, Riedo Andreas, Belhaj Mohamed, Bruschini Claudio, Charbon Edoardo, Ballif Christophe, Wyrsch Nicolas

机构信息

Photovoltaics and Thin-Film Electronics Laboratory (PV-Lab), Institute of Electrical and Micro Engineering, École Polytechnique Fédérale de Lausanne (EPFL), Neuchâtel, Switzerland.

Advanced Quantum Architecture Lab (AQUA), Institute of Electrical and Micro Engineering, École Polytechnique Fédérale de Lausanne (EPFL), Neuchâtel, Switzerland.

出版信息

Commun Eng. 2025 Apr 7;4(1):64. doi: 10.1038/s44172-025-00394-6.

Abstract

Microchannel plates are electron multipliers widely used in applications such as particle detection, imaging, or mass spectrometry and are often paired with a photocathode to enable photon detection. Conventional microchannel plates, made of glass fibers, face limitations in manufacturing flexibility and integration with electronic readouts. Hydrogenated amorphous silicon-based microchannel plates offer a compelling alternative and provide unique advantages in these areas. Here, we report on the characterization of the time resolution of amorphous silicon-based microchannel plates. Using high photoelectron flux and an amplifier, we measured a time resolution of (4.6 ± 0.1) ps, while at lower fluxes, the arrival time uncertainty increased to (12.6 ± 0.2) ps. By minimizing the distance between the detector and a low-noise amplifier, we achieved a time resolution of (6.1 ± 0.2) ps even at low fluxes, demonstrating the exceptional timing capabilities of these detectors. Furthermore, we developed a new detector generation with funnel-shaped channel openings, increasing the active area to 95% and with simulated electron detection efficiency over 92%. Preliminary testing shows promising results, though challenges remain in single-particle detection. These findings highlight the potential of amorphous silicon-based microchannel plates for applications requiring high temporal resolution and detection efficiency.

摘要

微通道板是电子倍增器,广泛应用于粒子探测、成像或质谱分析等领域,并且通常与光电阴极配对以实现光子探测。由玻璃纤维制成的传统微通道板在制造灵活性以及与电子读出装置的集成方面存在局限性。氢化非晶硅基微通道板提供了一种引人注目的替代方案,并在这些领域具有独特优势。在此,我们报告了非晶硅基微通道板时间分辨率的表征。使用高光电子通量和一个放大器,我们测量到时间分辨率为(4.6 ± 0.1)皮秒,而在较低通量下,到达时间不确定性增加到(12.6 ± 0.2)皮秒。通过最小化探测器与低噪声放大器之间的距离,即使在低通量下我们也实现了(6.1 ± 0.2)皮秒的时间分辨率,证明了这些探测器卓越的计时能力。此外,我们开发了一种新型探测器,其通道开口为漏斗形,将有效面积增加到95%,并且模拟电子探测效率超过92%。初步测试显示出有前景的结果,不过在单粒子探测方面仍存在挑战。这些发现凸显了非晶硅基微通道板在需要高时间分辨率和探测效率的应用中的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6f54/11976932/51fd17690e44/44172_2025_394_Fig1_HTML.jpg

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