论文标题
多通道光子晶体介电激光加速器的设计
Design of a multi-channel photonic crystal dielectric laser accelerator
论文作者
论文摘要
为了对大多数科学和医学应用有用,紧凑的粒子加速器的平均电流将比当前架构所启用要高得多。为此,我们为介电激光加速器提出了一个光子晶体体系结构,称为多输入多输出硅加速器(MIMOSA),使多个电子束的同时加速度加速,从而将总电子吞吐量提高至少一个级级。为了实现这一目标,我们表明光子晶体必须在相互空间的$γ$点上支持一个模式,其归一化频率等于相匹配的电子的归一化速度。我们表明,可以从相应的无限周期性结构的特征模型中推断出含羞草的优点,该结构为设计此类设备提供了强大的方法。此外,我们将含羞草结构扩展到电子偏转器和其他电子操纵功能。这些额外的功能,结合了这些设备的电子吞吐量的增加,允许在与当前制造技术兼容的完全集成的体系结构中对电子束的全光片操作,这为非常规的电子束成型,成像,成像,成像和辐射产生开辟了道路。
To be useful for most scientific and medical applications, compact particle accelerators will require much higher average current than enabled by current architectures. For this purpose, we propose a photonic crystal architecture for a dielectric laser accelerator, referred to as a multi-input multi-output silicon accelerator (MIMOSA), that enables simultaneous acceleration of multiple electron beams, increasing the total electron throughput by at least one order of magnitude. To achieve this, we show that the photonic crystal must support a mode at the $Γ$ point in reciprocal space, with a normalized frequency equal to the normalized speed of the phase matched electron. We show that the figure of merit of the MIMOSA can be inferred from the eigenmodes of the corresponding infinitely periodic structure, which provides a powerful approach to design such devices. Additionally, we extend the MIMOSA architecture to electron deflectors and other electron manipulation functionalities. These additional functionalities, combined with the increased electron throughput of these devices, permit all-optical on-chip manipulation of electron beams in a fully integrated architecture compatible with current fabrication technologies, which opens the way to unconventional electron beam shaping, imaging, and radiation generation.