University of Göttingen, IV Physical Institute, Göttingen, Germany.
Swiss Federal Institute of Technology Lausanne (EPFL), Lausanne, Switzerland.
Nature. 2020 Jun;582(7810):46-49. doi: 10.1038/s41586-020-2320-y. Epub 2020 Jun 3.
Free-electron beams are versatile probes of microscopic structure and composition, and have revolutionized atomic-scale imaging in several fields, from solid-state physics to structural biology. Over the past decade, the manipulation and interaction of electrons with optical fields have enabled considerable progress in imaging methods, near-field electron acceleration, and four-dimensional microscopy techniques with high temporal and spatial resolution. However, electron beams typically couple only weakly to optical excitations, and emerging applications in electron control and sensing require large enhancements using tailored fields and interactions. Here we couple a free-electron beam to a travelling-wave resonant cavity mode. The enhanced interaction with the optical whispering-gallery modes of dielectric microresonators induces a strong phase modulation on co-propagating electrons, which leads to a spectral broadening of 700 electronvolts, corresponding to the absorption and emission of hundreds of photons. By mapping the near-field interaction with ultrashort electron pulses in space and time, we trace the lifetime of the the microresonator following a femtosecond excitation and observe the spectral response of the cavity. The natural matching of free electrons to these quintessential optical modes could enable the application of integrated photonics technology in electron microscopy, with broad implications for attosecond structuring, probing quantum emitters and possible electron-light entanglement.
自由电子束是微观结构和成分的多功能探针,已经彻底改变了从固态物理学到结构生物学等多个领域的原子尺度成像。在过去的十年中,电子与光场的相互作用和操控已经使得成像方法、近场电子加速以及具有高时间和空间分辨率的四维显微镜技术取得了相当大的进展。然而,电子束通常与光学激发的耦合较弱,而在电子控制和传感方面的新兴应用需要使用定制场和相互作用进行大幅度增强。在这里,我们将自由电子束与行波共振腔模式耦合。与介电微谐振器的传播模 whispering-gallery 模的增强相互作用会对共传播电子产生强烈的相位调制,从而导致电子的光谱展宽 700 电子伏特,相当于吸收和发射数百个光子。通过在空间和时间上对超短电子脉冲的近场相互作用进行映射,我们追踪了微谐振器在飞秒激发后的寿命,并观察了腔的光谱响应。自由电子与这些典型光学模式的自然匹配可能会使集成光子学技术在电子显微镜中得到应用,这对阿秒结构、探测量子发射器以及可能的电子-光纠缠具有广泛的意义。