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具有可调谐激光发射的灵活随机激光器。

Flexible random lasers with tunable lasing emissions.

机构信息

Institute of Electro-Optical Science and Technology, National Taiwan Normal University, 88, Sec.4, Ting-Chou Road, Taipei 116, Taiwan.

出版信息

Nanoscale. 2018 Jun 7;10(22):10403-10411. doi: 10.1039/c8nr00229k.

Abstract

In this study, we experimentally demonstrated a flexible random laser fabricated on a polyethylene terephthalate (PET) substrate with a high degree of tunability in lasing emissions. Random lasing oscillation arises mainly from the resonance coupling between the emitted photons of gain medium (Rhodamine 6G, R6G) and the localized surface plasmon (LSP) of silver nanoprisms (Ag NPRs), which increases the effective cross-section for multiple light scattering, thus stimulating the lasing emissions. More importantly, it was found that the random lasing wavelength is blue-shifted monolithically with the increase in bending strains exerted on the PET substrate, and a maximum shift of ∼15 nm was achieved in the lasing wavelength, when a 50% bending strain was exerted on the PET substrate. Such observation is highly repeatable and reversible, and this validates that we can control the lasing wavelength by simply bending the flexible substrate decorated with the Ag NPRs. The scattering spectrum of the Ag NPRs was obtained using a dark-field microscope to understand the mechanism for the dependence of the wavelength shift on the exerted bending strains. As a result, we believe that the experimental demonstration of tunable lasing emissions based on the revealed structure is expected to open up a new application field of random lasers.

摘要

在这项研究中,我们通过实验证明了在聚对苯二甲酸乙二醇酯(PET)基底上制作的灵活随机激光具有高度可调谐的激光发射。随机激光振荡主要源于增益介质(若丹明 6G,R6G)发出的光子与银纳米棱镜(Ag NPRs)的局域表面等离子体(LSP)之间的共振耦合,这增加了多次光散射的有效横截面,从而刺激了激光发射。更重要的是,我们发现随机激光波长随着施加在 PET 基底上的弯曲应变的增加而蓝移,当在 PET 基底上施加 50%的弯曲应变时,激光波长最大位移约为 15nm。这种观察结果高度可重复且可逆,这验证了我们可以通过简单地弯曲涂有 Ag NPRs 的柔性基底来控制激光波长。使用暗场显微镜获得了 Ag NPRs 的散射光谱,以了解波长位移与施加的弯曲应变之间的关系的机制。因此,我们相信基于所揭示结构的可调谐激光发射的实验演示有望开辟随机激光的新应用领域。

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