A Novel Microlaser Based Plasmonic-Polymer Hybrid Resonator

M. Manzo, R. Schwend
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引用次数: 1

Abstract

Whispering gallery mode (WGM) resonators exhibit high quality factor Q and a small mode volume; they usually exhibit high resolution when used as sensors. The light trapped inside a polymeric micro-cavity travels through total internal reflection generating the whispering gallery modes (WGMs). A laser or a lamp is used to power the microlaser by using a laser dye embedded within the resonator. The excited fluorescence of the dye couples with the optical modes. The optical modes (laser modes) are seen as sharp peaks in the emission spectrum with the aid of an optical interferometer. The position of these optical modes is sensitive to any change in the morphology of the resonator. However, the laser threshold of these microlasers is of few hundreds of microjoules per square centimeter (fluence) usually. In addition, the excitation wavelength’s light powering the device must be smaller than the microlasers size. When metallic nanoparticles are added to the microlaser, the excited surface plasmon couples with the emission spectrum of the laser dye. Therefore, the fluorescence of the dye can be enhanced by this coupling; this in turn, lowers the power threshold of the microlaser. Also, due to a plasmonic effect, it is possible to use smaller microlasers. In addition, a new sensing modality is enabled based on the variation of the optical modes’ amplitude with the change in the morphology’s microlaser. This opens a new avenue of low power consumption microlasers and photonics multiplexed biosensors.
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一种新型微激光等离子体-聚合物混合谐振器
窃窃廊模式(WGM)谐振器具有高质量因子Q和小模体积的特点;当用作传感器时,它们通常具有高分辨率。被困在聚合物微腔内的光通过全内反射传播,产生低语廊模式(WGMs)。通过在谐振器内嵌入激光染料,使用激光或灯为微激光器供电。染料的激发荧光与光学模式偶联。在光学干涉仪的帮助下,光学模式(激光模式)在发射光谱中被视为尖锐的峰值。这些光学模式的位置对谐振腔形态的任何变化都很敏感。然而,这些微激光器的激光阈值通常为每平方厘米几百微焦耳(fluence)。此外,为器件供电的激发波长必须小于微激光器的尺寸。当金属纳米粒子加入到微激光器中时,激发的表面等离子体与激光染料的发射光谱耦合。因此,这种耦合可以增强染料的荧光;这反过来又降低了微激光的功率阈值。此外,由于等离子体效应,可以使用更小的微激光器。此外,基于光学模式振幅随微激光形貌变化的变化,实现了一种新的传感模式。这开辟了低功耗微激光器和光子多路生物传感器的新途径。
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