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通过应变工程突破硅在短波红外波长范围内的吸收极限。

Breaking the absorption limit of Si toward SWIR wavelength range via strain engineering.

作者信息

Katiyar Ajit K, Thai Kean You, Yun Won Seok, Lee JaeDong, Ahn Jong-Hyun

机构信息

School of Electrical and Electronic Engineering, Yonsei University, Seoul 03722, Republic of Korea.

Department of Emerging Materials Science, DGIST, Daegu 42988, Republic of Korea.

出版信息

Sci Adv. 2020 Jul 29;6(31):eabb0576. doi: 10.1126/sciadv.abb0576. eCollection 2020 Jul.

Abstract

Silicon has been widely used in the microelectronics industry. However, its photonic applications are restricted to visible and partial near-infrared spectral range owing to its fundamental optical bandgap (1.12 eV). With recent advances in strain engineering, material properties, including optical bandgap, can be tailored considerably. This paper reports the strain-induced shrinkage in the Si bandgap, providing photosensing well beyond its fundamental absorption limit in Si nanomembrane (NM) photodetectors (PDs). The Si-NM PD pixels were mechanically stretched (biaxially) by a maximum strain of ~3.5% through pneumatic pressure-induced bulging, enhancing photoresponsivity and extending the Si absorption limit up to 1550 nm, which is the essential wavelength range of the lidar sensors for obstacle detection in self-driving vehicles. The development of deformable three-dimensional optoelectronics via gas pressure-induced bulging also facilitated the realization of unique device designs with concave and convex hemispherical architectures, which mimics the electronic prototypes of biological eyes.

摘要

硅已在微电子行业中得到广泛应用。然而,由于其基本光学带隙(1.12电子伏特),其光子应用仅限于可见光和部分近红外光谱范围。随着应变工程的最新进展,包括光学带隙在内的材料特性可以得到相当程度的调整。本文报道了硅带隙中应变诱导的收缩,这使得硅纳米膜(NM)光电探测器(PD)的光传感能力远超其基本吸收极限。通过气压诱导凸起,硅-NM PD像素被机械拉伸(双轴),最大应变为~3.5%,从而提高了光响应度,并将硅的吸收极限扩展到1550纳米,这是自动驾驶车辆中用于障碍物检测的激光雷达传感器的关键波长范围。通过气压诱导凸起开发可变形三维光电子器件,也有助于实现具有凹面和凸面半球形架构的独特器件设计,这模仿了生物眼睛的电子原型。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8ad5/7439440/9c1279456e4c/abb0576-F1.jpg

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