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非平面设计的雪崩光电二极管和硅光电倍增管。

Avalanche Photodiodes and Silicon Photomultipliers of Non-Planar Designs.

机构信息

P. N. Lebedev Physical Institute of the Russian Academy of Sciences, Leninskiy Prospekt 53, 119991 Moscow, Russia.

出版信息

Sensors (Basel). 2023 Jun 6;23(12):5369. doi: 10.3390/s23125369.

Abstract

Conventional designs of an avalanche photodiode (APD) have been based on a planar p-n junction since the 1960s. APD developments have been driven by the necessity to provide a uniform electric field over the active junction area and to prevent edge breakdown by special measures. Most modern silicon photomultipliers (SiPM) are designed as an array of Geiger-mode APD cells based on planar p-n junctions. However, the planar design faces an inherent trade-off between photon detection efficiency and dynamic range due to loss of an active area at the cell edges. Non-planar designs of APDs and SiPMs have also been known since the development of spherical APDs (1968), metal-resistor-semiconductor APDs (1989), and micro-well APDs (2005). The recent development of tip avalanche photodiodes (2020) based on the spherical p-n junction eliminates the trade-off, outperforms the planar SiPMs in the photon detection efficiency, and opens new opportunities for SiPM improvements. Furthermore, the latest developments in APDs based on electric field-line crowding and charge-focusing topology with quasi-spherical p-n junctions (2019-2023) show promising functionality in linear and Geiger operating modes. This paper presents an overview of designs and performances of non-planar APDs and SiPMs.

摘要

自 20 世纪 60 年代以来,雪崩光电二极管 (APD) 的传统设计一直基于平面 p-n 结。APD 的发展是为了在有源结区域提供均匀的电场,并通过特殊措施防止边缘击穿。大多数现代硅光电倍增管 (SiPM) 设计为基于平面 p-n 结的盖革模式 APD 单元阵列。然而,由于在单元边缘失去有源面积,平面设计在光子探测效率和动态范围之间存在固有折衷。自球形 APD(1968 年)、金属电阻半导体 APD(1989 年)和微阱 APD(2005 年)开发以来,APD 和 SiPM 的非平面设计也已为人所知。基于球形 p-n 结的尖端雪崩光电二极管 (2020 年) 的最新发展消除了这种折衷,在光子探测效率方面优于平面 SiPM,并为 SiPM 的改进开辟了新的机会。此外,基于电场线拥挤和电荷聚焦拓扑结构的 APD 的最新发展(2019-2023 年)具有准球形 p-n 结,在线性和盖革工作模式下显示出有前途的功能。本文概述了非平面 APD 和 SiPM 的设计和性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b154/10302131/997d4dcc75cd/sensors-23-05369-g002.jpg

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