论文标题

使用交流相聚焦在纳米光芯片上电子束传输中的实验考虑因素

Experimental considerations in electron beam transport on a nanophotonic chip using alternating phase focusing

论文作者

Shiloh, Roy, Chlouba, Tomas, Hommelhoff, Peter

论文摘要

发明激光后不久,它被标记为颗粒加速度强的强,高频电磁辐射的候选来源。的确,尽管当今复杂的粒子加速器设施是几十年来由几十年来的工作人员,工程师和众多科学家贡献的令人惊讶的高潮,但最近已经提出并证明了新趋势和加速技术。这些技术之一涉及粒子加速器的微型化,这是通过使用激光器使用激光替换在光学频率范围内加速粒子的射频电磁场来实现的。这需要使用纳米光子学结构来提供所需的现场分布。最近,已经证明了RF加速器的纳米光学对应物的个体元素。同样,已经显示了通过这种结构的主动电子传输,这是基于交流相聚焦的概念。在这项贡献中,我们讨论并增强了使用光学频率进行交替阶段聚焦的原理,并提供了相关仿真和实验的新见解。特别是,我们展示了如何从时间延迟扫描中确定可能的不精确和寄生效应,并讨论电子通过纳米结构的传播如何取决于电子和激光脉冲之间的时间重叠,并展示电子束的发射角如何影响电子通过结构进行测量的电子传递。

Not long after the laser was invented, it has been marked as a candidate source of strong, high-frequency electromagnetic radiation for acceleration of particles. Indeed, while the complex particle accelerator facilities today are an astonishing culmination of decades of work contributed by generations of physicists, engineers, and a host of scientists, new trends and acceleration technologies have been recently proposed and demonstrated. One of these technologies involves the miniaturization of particle accelerators, which is achieved by replacing the radio-frequency electromagnetic fields accelerating the particles with fields in the optical frequency range, using lasers. This entails using nanophotonics structures to provide the required field distribution. Recently, individual elements towards the nanophotonics counterpart of RF accelerators have been demonstrated. Similarly, active electron transport through such a structure has been shown, which was based on the concept of alternating phase focusing. In this contribution, we discuss and augment on the recently-demonstrated principle of alternating phase focusing using optical frequencies, and provide new insights from relevant simulations and experiments. In particular, we show how to identify possible imprecisions and parasitic effects from time delay scans and discuss how the transmission of electrons through the nanometric structure depends on the temporal overlap between electron and laser pulses, and show how the incidence angle of the electron beam can affect the measured transmission of electrons through the structure.

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