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光纤集成超光栅中自由电子与光耦合的角色散

Angular Dispersion of Free-Electron-Light Coupling in an Optical Fiber-Integrated Metagrating.

作者信息

Liebtrau Matthias, Polman Albert

机构信息

Center for Nanophotonics, NWO-Institute AMOLF, Science Park 104, 1098 XG Amsterdam, The Netherlands.

出版信息

ACS Photonics. 2024 Mar 2;11(3):1125-1136. doi: 10.1021/acsphotonics.3c01574. eCollection 2024 Mar 20.

Abstract

Free electrons can couple to optical material excitations on nanometer-length and attosecond-time scales, opening-up unique opportunities for both the generation of radiation and the manipulation of the electron wave function. Here, we exploit the Smith-Purcell effect to experimentally study the coherent coupling of free electrons and light in a circular metallo-dielectric metagrating that is fabricated onto the input facet of a multimode optical fiber. Using hyperspectral angle-resolved (HSAR) far-field imaging inside a scanning electron microscope, we probe the angular dispersion of Smith-Purcell radiation (SPR) that is simultaneously generated in free space and inside the fiber by an electron beam that grazes the metagrating at a nanoscale distance. Furthermore, we analyze the spectral distribution of SPR that is emitted into guided optical modes and correlate it with the numerical aperture of the fiber. By varying the electron energy between 5 and 30 keV, we observe the emission of SPR from the ultraviolet to the near-infrared spectral range, and up to the third emission order. In addition, we detect incoherent cathodoluminescence that is generated by electrons penetrating the input facet of the fiber and scattering inelastically. As a result, our HSAR measurements reveal a Fano resonance that is coupled to a Rayleigh anomaly of the metagrating, and that overlaps with the angular dispersion of second-order SPR at 20 keV. Our findings demonstrate the potential of optical fiber-integrated metasurfaces as a versatile platform to implement novel ultrafast light sources and to synthesize complex free-electron quantum states with light.

摘要

自由电子能够在纳米长度和阿秒时间尺度上与光学材料激发耦合,为辐射产生和电子波函数操控带来了独特机遇。在此,我们利用史密斯 - 珀塞尔效应,通过实验研究自由电子与光在圆形金属 - 电介质超光栅中的相干耦合,该超光栅制作在多模光纤的输入端面上。利用扫描电子显微镜内的高光谱角分辨(HSAR)远场成像,我们探测了由电子束在纳米尺度距离擦过超光栅时,在自由空间和光纤内部同时产生的史密斯 - 珀塞尔辐射(SPR)的角色散。此外,我们分析了发射到导光模式中的SPR的光谱分布,并将其与光纤的数值孔径相关联。通过在5至30keV之间改变电子能量,我们观察到从紫外到近红外光谱范围的SPR发射,直至三阶发射。此外,我们检测到由穿透光纤输入端面并发生非弹性散射的电子产生的非相干阴极发光。结果,我们的HSAR测量揭示了一种与超光栅的瑞利异常耦合的法诺共振,并且在20keV时与二阶SPR的角色散重叠。我们的研究结果证明了光纤集成超表面作为一个通用平台的潜力,可用于实现新型超快光源以及用光合成复杂的自由电子量子态。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e765/10958598/f445ef7a0d87/ph3c01574_0001.jpg

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