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基于n型掺杂氮化镓的超小型低阈值中红外等离子体纳米线激光器。

Ultra-small low-threshold mid-infrared plasmonic nanowire lasers based on n-doped GaN.

作者信息

Zheng Jiahui, Yan Xin, Zhang Xia, Ren Xiaomin

机构信息

State Key Laboratory of Information Photonics and Optical Communications, Beijing University of Posts and Telecommunications, Beijing, 100876, China.

出版信息

Discov Nano. 2023 Feb 16;18(1):14. doi: 10.1186/s11671-023-03797-6.

Abstract

An ultra-small mid-infrared plasmonic nanowire laser based on n-doped GaN metallic material is proposed and studied by the finite-difference time-domain method. In comparison with the noble metals, nGaN is found to possess superior permittivity characteristics in the mid-infrared range, beneficial for generating low-loss surface plasmon polaritons and achieving strong subwavelength optical confinement. The results show that at a wavelength of 4.2 µm, the penetration depth into the dielectric is substantially decreased from 1384 to 163 nm by replacing Au with nGaN, and the cutoff diameter of nGaN-based laser is as small as 265 nm, only 65% that of the Au-based one. To suppress the relatively large propagation loss induced by nGaN, an nGaN/Au-based laser structure is designed, whose threshold gain has been reduced by nearly half. This work may pave the way for the development of miniaturized low-consumption mid-infrared lasers.

摘要

提出了一种基于n型掺杂氮化镓金属材料的超小型中红外等离子体纳米线激光器,并采用时域有限差分法进行了研究。与贵金属相比,发现n型氮化镓在中红外范围内具有优异的介电常数特性,有利于产生低损耗表面等离子体激元并实现强亚波长光限制。结果表明,在波长为4.2μm时,用n型氮化镓替代金后,进入电介质的穿透深度从1384nm大幅降至163nm,基于n型氮化镓的激光器的截止直径小至265nm,仅为基于金的激光器的65%。为了抑制n型氮化镓引起的相对较大的传播损耗,设计了一种基于n型氮化镓/金的激光器结构,其阈值增益降低了近一半。这项工作可能为小型化低功耗中红外激光器的发展铺平道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3147/9935799/bf48fd8eba85/11671_2023_3797_Fig1_HTML.jpg

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