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基于周期性散射的超紧凑且均匀的纳米发射器阵列

Ultracompact and Uniform Nanoemitter Array Based on Periodic Scattering.

作者信息

Yin Zhen, Tang Haijun, Wang Kaiyang, Zhang Xudong, Sha Xinbo, Wang Wenchao, Xiao Shumin, Song Qinghai

机构信息

Ministry of Industry and Information Technology Key Lab of Micro-Nano Optoelectronic Information System, Guangdong Provincial Key Laboratory of Semiconductor Optoelectronic Materials and Intelligent Photonic Systems, Harbin Institute of Technology, Shenzhen 518055, P. R. China.

Pengcheng Laboratory, Shenzhen 518055, P. R. China.

出版信息

Nano Lett. 2024 Oct 9;24(40):12612-12619. doi: 10.1021/acs.nanolett.4c03690. Epub 2024 Sep 27.

Abstract

As emerging gain materials, lead halide perovskites have drawn considerable attention in coherent light sources. With the development of patterning and integration techniques, a perovskite laser array has been realized by distributing perovskite microcrystals periodically. Nevertheless, the packing density is limited by the crystal size and the channel gap distance. More importantly, the lasing performance for individual laser units is quite random due to variation of size and crystal quality. Herein an ultracompact perovskite nanoemitter array with uniform emission has been demonstrated. Individual emitters are formed via scattering evanescent components from a shared Fabry-Perot laser, ensuring uniform lasing emission in a unit cell with a side length of 160 nm and lattice constant of 400 nm. And the periodic silicon scatterers do not deteriorate the lasing threshold dramatically. In addition, the surface emitting efficiency increased significantly. The direct integration of a densely packed nanoemitter array with a silicon platform promises high-throughput sensing and high-capacity optical interconnects.

摘要

作为新兴的增益材料,卤化铅钙钛矿在相干光源领域引起了广泛关注。随着图案化和集成技术的发展,通过周期性分布钙钛矿微晶实现了钙钛矿激光阵列。然而,填充密度受到晶体尺寸和通道间隙距离的限制。更重要的是,由于尺寸和晶体质量的变化,单个激光单元的激光性能相当随机。在此展示了一种具有均匀发射的超紧凑钙钛矿纳米发射体阵列。单个发射体通过散射来自共享法布里-珀罗激光器的倏逝分量形成,确保在边长为160nm、晶格常数为400nm的单元中实现均匀的激光发射。并且周期性的硅散射体不会显著恶化激光阈值。此外,表面发射效率显著提高。密集排列的纳米发射体阵列与硅平台的直接集成有望实现高通量传感和高容量光互连。

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