论文标题
介电激光电子加速器的三二二二二次交流相聚焦
Threedimensional Alternating-Phase Focusing for Dielectric-Laser Electron Accelerators
论文作者
论文摘要
电介质激进加速度(DLA)的概念在分解限制(非超等字)粒子加速器中提供了最高的梯度,从而提供了微型化的潜力。最近提出了依赖于均匀的激光场和第三方向上的外部磁聚焦在微芯片上在微芯片上实现完全可扩展的电子加速器。在这封信中,我们将DLA方案的APF推广到3D,使得在没有任何外部设备的情况下达到了稳定的光束传输和加速度,而结构仍然可以通过完全二维的光刻技术来制造。在新方案中,通过利用新的水平边缘,我们在给定的入射激光场处获得了明显更高的加速梯度。这可以省略大约2.5 keV(beta = 0.1)的超低注射能和以前DLA实验中使用的庞大的高压设备。 DLA在超快时间分辨的电子显微镜和-Diffraction中具有应用。我们的fndings对于整个设置的小型化至关重要,并为在光纤驱动的内窥镜中(例如医疗目的)中铺平了DLA的道路。
The concept of dielectric-laser acceleration (DLA) provides the highest gradients among breakdown-limited (nonplasma) particle accelerators and thus the potential of miniaturization. The implementation of a fully scalable electron accelerator on a microchip by twodimensional alternating phase focusing (APF), which relies on homogeneous laser fields and external magnetic focusing in the third direction, was recently proposed. In this Letter, we generalize the APF for DLA scheme to 3D, such that stable beam transport and acceleration is attained without any external equipment, while the structures can still be fabricated by entirely twodimensional lithographic techniques. In the new scheme, we obtain signifcantly higher accelerating gradients at given incident laser field by additionally exploiting the new horizontal edge. This enables ultra-low injection energies of about 2.5 keV (beta = 0.1) and bulky high voltage equipment as used in previous DLA experiments can be omitted. DLAs have applications in ultrafast time-resolved electron microscopy and -diffraction. Our fndings are crucial for the miniaturization of the entire setup and pave the way towards integration of DLAs in optical fiber driven endoscopes, e.g., for medical purposes.