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Flexible micro resonators: lasing and sensing

机译:柔性微谐振器:激光和传感

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Microresonators have drawn a great deal of interest for their importance in both practical applications and fundamental physics in light-matter interaction. The optical confinement provided by a microresonator greatly enhances the interaction between optical spatial mode and the light emitting materials. Conventional fabrication of microresonators adopting semiconductor processing technology (no matter top-down or bottom-up approach) still faces some challenges. Here we report the feasibility of constructing solid state microresonators with various configurations including spheres, hemispheres and fibres from organic polymer in a flexible way. We realize optically pumped lasing from these structures after incorporating organic dye materials and/or colloidal quantum dots into the resonators. The lasing characteristics have been systematically examined in terms of size dependence and polarization. The longitudinal optical modes are well defined by whispering gallery modes. We are also able to tune the resonance modes by deforming the shape of micro-spheres, representing the facile manipulation of light-matter interaction. Finally, refractive index sensing with high sensitivity can be readily realized from these structures enabled by the existence of evanescent waves and improved by Vernier effect in coupled resonators.
机译:微谐振器因其在光物质相互作用的实际应用和基础物理学中的重要性而引起了极大的兴趣。微谐振器提供的光学限制极大地增强了光学空间模式与发光材料之间的相互作用。采用半导体加工技术(无论是自上而下还是自下而上)的微谐振器的常规制造仍然面临一些挑战。在这里,我们报告了以灵活的方式从有机聚合物构建具有各种配置(包括球体,半球和纤维)的固态微谐振器的可行性。在将有机染料材料和/或胶体量子点结合到谐振器中之后,我们从这些结构实现了光泵浦激射。激光特性已经在尺寸依赖性和偏振方面进行了系统检查。纵向光学模式可以通过耳语画廊模式很好地定义。我们还能够通过变形微球的形状来调整共振模式,这代表了光-物质相互作用的简便控制。最终,通过存在structures逝波并通过耦合谐振器中的游标效应改善的这些结构,可以容易地实现具有高灵敏度的折射率感测。

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