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室温短波长红外 Si 光电探测器。

Room-temperature short-wavelength infrared Si photodetector.

机构信息

Institute of Ion Beam Physics and Materials Research, Helmholtz-Zentrum Dresden-Rossendorf, P.O. Box 510119, 01314 Dresden, Germany.

Technische Universität Dresden, 01062 Dresden, Germany.

出版信息

Sci Rep. 2017 Mar 6;7:43688. doi: 10.1038/srep43688.

Abstract

The optoelectronic applications of Si are restricted to the visible and near-infrared spectral range due to its 1.12 eV-indirect band gap. Sub-band gap light detection in Si, for instance, has been a long-standing scientific challenge for many decades since most photons with sub-band gap energies pass through Si unabsorbed. This fundamental shortcoming, however, can be overcome by introducing non-equilibrium deep-level dopant concentrations into Si, which results in the formation of an impurity band allowing for strong sub-band gap absorption. Here, we present steady-state room-temperature short-wavelength infrared p-n photodiodes from single-crystalline Si hyperdoped with Se concentrations as high as 9 × 10 cm, which are introduced by a robust and reliable non-equilibrium processing consisting of ion implantation followed by millisecond-range flash lamp annealing. We provide a detailed description of the material properties, working principle and performance of the photodiodes as well as the main features in the studied wavelength region. This work fundamentally contributes to establish the short-wavelength infrared detection by hyperdoped Si in the forefront of the state-of-the-art of short-IR Si photonics.

摘要

由于其 1.12eV 的间接带隙,硅的光电应用仅限于可见光和近红外光谱范围。几十年来,由于大多数具有亚带隙能量的光子未被吸收就穿过硅,因此硅中的亚带隙光探测一直是一个长期存在的科学挑战。然而,通过向硅中引入非平衡深能级掺杂浓度,可以克服这一基本缺点,这导致形成杂质带,从而允许强亚带隙吸收。在这里,我们展示了由 Se 浓度高达 9×10^cm 的单晶 Si 超掺杂形成的室温稳定短波长红外 p-n 光电二极管,该光电二极管通过由离子注入 followed 毫秒级闪光灯退火组成的稳健且可靠的非平衡处理引入。我们详细描述了光电二极管的材料特性、工作原理和性能,以及在研究的波长区域中的主要特征。这项工作从根本上推动了超掺杂硅在短红外硅光子学领域的前沿实现短波长红外检测。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2a76/5337967/cc235928c386/srep43688-f1.jpg

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