Low-Energy-Spread Attosecond Bunching and Coherent Electron Acceleration in Dielectric Nanostructures

U. Niedermayer, D. Black, K. Leedle, Yu Miao, R. Byer, O. Solgaard
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引用次数: 10

Abstract

We demonstrate a compact technique to compress electron pulses to attosecond length, while keeping the energy spread reasonably small. The technique is based on Dielectric Laser Acceleration (DLA) in nanophotonic silicon structures. Unlike previous ballistic optical microbunching demonstrations, we use a modulator-demodulator scheme to compress phase space in the time and energy coordinates. With a second stage, we show that these pulses can be coherently accelerated, producing a net energy gain of $1.5\pm0.1$ keV, which is significantly larger than the remaining energy spread of $0.88 \,_{-0.2}^{+0.0}$ keV FWHM. We show that by linearly sweeping the phase between the two stages, the energy spectrum can be coherently moved in a periodic manner, while keeping the energy spread roughly constant. After leaving the buncher, the electron pulse is also transversely focused, and can be matched into a following accelerator lattice. Thus, this setup is the prototype injector into a scalable DLA based on Alternating Phase Focusing (APF).
介电纳米结构中的低能量扩散阿秒聚束和相干电子加速
我们展示了一种紧凑的技术,将电子脉冲压缩到阿秒的长度,同时保持能量传播相当小。该技术基于纳米光子硅结构中的介电激光加速(DLA)。与以前的弹道光学微束演示不同,我们使用调制器-解调器方案来压缩时间和能量坐标中的相空间。在第二阶段,我们发现这些脉冲可以被相干加速,产生1.5\pm0.1$ keV的净能量增益,这明显大于剩余的0.88 \,_{-0.2}^{+0.0}$ keV FWHM的能量差。我们表明,通过线性扫描两个阶段之间的相位,能谱可以以周期性的方式相干移动,同时保持能量传播大致恒定。离开聚束器后,电子脉冲也横向聚焦,并可以匹配到后续的加速器晶格中。因此,该装置是基于交替相位聚焦(APF)的可扩展DLA的原型注入器。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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