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通过银纳米颗粒沉积在掺镓氧化锌微带中实现电子 - 空穴等离子体法布里 - 珀罗激光发射

Electron-hole plasma Fabry-Perot lasing in a Ga-incorporated ZnO microbelt via Ag nanoparticle deposition.

作者信息

Sun Yuzhou, Jiang Mingming, Li Binghui, Xie Xiuhua, Shan Chongxin, Shen Dezhen

出版信息

Opt Express. 2022 Jan 17;30(2):740-753. doi: 10.1364/OE.440628.

Abstract

In this work, individual ZnO via Ga-doped (ZnO:Ga) microbelts with excellent crystallinity and smooth facets can enable the realization of lateral microresonator Fabry-Perot (F-P) microlasers, and the F-P lasing action originates from excitonic state. Interestingly, introducing Ag nanoparticles (AgNPs) deposited on the microbelt can increase F-P lasing characteristics containing a lower threshold and enhanced lasing output. Especially for the large size AgNPs (the diameter d is approximately 200 nm), the lasing features also exhibit a significant redshift of each lasing peak and an observable broadening of the spectral line width with an increase of the excitation fluence. And the remarkable lasing characteristics are belonging to the electron-hole plasma (EHP) luminescence. The behavior and dynamics of the stimulated radiation in an AgNPs@ZnO:Ga microbelt are studied, suggesting the Mott-transition from the excitonic state to EHP state that is responsible for the F-P lasing. These features can be attributed to the working mechanism that the hot electrons created by the large size AgNPs through nonradiative decay can fill the conduction band of nearby ZnO:Ga, leading to a downward shift of the conduction band edge. This novel filling influence can facilitate bandgap renormalization and result in EHP emission. The results provide a comprehensive understanding of the transition between excitonic and EHP states in the stimulated emission process. More importantly, it also can provide new scheme to developing high efficiency and ultra-low threshold microlasing diodes.

摘要

在这项工作中,具有优异结晶度和平滑晶面的单个Ga掺杂氧化锌(ZnO:Ga)微带能够实现横向微谐振器法布里-珀罗(F-P)微激光器,且F-P激光作用源于激子态。有趣的是,在微带上引入沉积的银纳米颗粒(AgNPs)可以增强F-P激光特性,包括降低阈值和提高激光输出。特别是对于大尺寸的AgNPs(直径d约为200 nm),随着激发通量的增加,激光特性还表现出每个激光峰的显著红移和谱线宽度的明显展宽。并且这种显著的激光特性属于电子-空穴等离子体(EHP)发光。研究了AgNPs@ZnO:Ga微带中受激辐射的行为和动力学,表明从激子态到EHP态的莫特转变是F-P激光的原因。这些特性可归因于这样的工作机制:大尺寸AgNPs通过非辐射衰减产生的热电子可以填充附近ZnO:Ga的导带,导致导带边缘向下移动。这种新颖的填充影响有助于带隙重整化并导致EHP发射。这些结果提供了对受激发射过程中激子态和EHP态之间转变的全面理解。更重要的是,它还可以为开发高效和超低阈值微激光二极管提供新方案。

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