论文标题

用于超快纤维激光器的插件等离子式元器

Plug-Play Plasmonic Metafibers for Ultrafast Fiber Lasers

论文作者

Zhang, Lei, Zhang, Huiru, Tang, Ni, Chen, Xiren, Liu, Fengjiang, Sun, Xiaoyu, Yu, Hongyan, Sun, Xinyu, Jia, Qiannan, Chen, Boqu, Cluzel, Benoit, Grelu, Philippe, Coillet, Aurelien, Qiu, Feng, Ying, Lei, Sha, Wei, Liu, Xiaofeng, Qiu, Jianrong, Zhao, Ding, Yan, Wei, Wu, Duanduan, Shen, Xiang, Wang, Jiyong, Qiu, Min

论文摘要

Metafiber通过在光纤尖端上整合跨侧面的纳米级光操作,将常规光纤的功能扩展到前所未有的纳米级光操作,成为纳米科学和光纤社区的新兴光耦合平台。由于缺乏与通用光纤网络的标准接口,主要是探索孤立的裸纤维,目前的元素仍然是概念验证演示。在这里,我们开发了新的方法论,可以使用标准平面技术直接在商用单模式跳跃机的端面上制造明确定义的等离子元面积,并在非线性光学方案中首次证明其实际应用。通过纤维电路和任意跨度的景观插件连接,具有可调等离激元共振的元射射器将在纤维激光腔中实现,从吸收反应。提供了对等离子跨面可饱和吸收背后的物理机制的新见解。纳米制造过程流量与现有的洁净室技术兼容,为元热器提供了成为官能化纤维组件的常规成员的途径。这项工作为下一代超快光纤激光器,光学频率梳,光学神经网络和超模型“全纤维”光学系统铺平了道路,用于感应,成像,通信和许多其他。

Metafibers expand the functionalities of conventional optical fibers to unprecedented nanoscale light manipulations by integrating metasurfaces on the fiber tips, becoming an emerging light-coupling platform for both nanoscience and fiber optics communities. Mostly exploring the isolated bare fibers, current metafibers remain as proof-of-concept demonstrations due to a lack of standard interfaces with the universal fiber networks. Here, we develop new methodologies to fabricate well-defined plasmonic metasurfaces directly on the end facets of commercial single mode fiber jumpers using standard planar technologies and provide a first demonstration of their practical applications in the nonlinear optics regime. Featuring plug-play connections with fiber circuitry and arbitrary metasurfaces landscapes, the metafibers with tunable plasmonic resonances are implemented into fiber laser cavities, yielding all-fiber sub-picosecond (minimum 513 fs) soliton mode locked lasers at optical wavelengths of 1.5 micrometer and 2 micrometer, demonstrating their unusual polarimetric nonlinear transfer functions and superior saturation absorption responses. Novel insights into the physical mechanisms behind the saturable absorption of plasmonic metasurfaces are provided. The nanofabrication process flow is compatible with existing cleanroom technologies, offering metafibers an avenue to be a regular member of functionalized fiber components. The work paves the way towards next generation of ultrafast fiber lasers, optical frequency combs, optical neural networks and ultracompact "all-in-fibers" optical systems for sensing, imaging, communications, and many others.

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