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On-chip integrated laser-driven particle accelerator

机译:片上集成激光驱动粒子加速器

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摘要

Particle accelerators represent an indispensable tool in science and industry. However, the size and cost of conventional radio-frequency accelerators limit the utility and reach of this technology. Dielectric laser accelerators (DLAs) provide a compact and cost-effective solution to this problem by driving accelerator nanostructures with visible or near-infrared pulsed lasers, resulting in a 104 reduction of scale. Current implementations of DLAs rely on free-space lasers directly incident on the accelerating structures, limiting the scalability and integrability of this technology. We present an experimental demonstration of a waveguide-integrated DLA that was designed using a photonic inverse-design approach. By comparing the measured electron energy spectra with particle-tracking simulations, we infer a maximum energy gain of 0.915 kilo-electron volts over 30 micrometers, corresponding to an acceleration gradient of 30.5 mega-electron volts per meter. On-chip acceleration provides the possibility for a completely integrated mega-electron volt-scale DLA.
机译:粒子加速器是科学和工业中必不可少的工具。但是,常规射频加速器的尺寸和成本限制了该技术的实用性和范围。介电激光加速器(DLA)通过使用可见或近红外脉冲激光器驱动加速器纳米结构,从而为该问题提供了一种紧凑且经济高效的解决方案,从而使尺寸减小了104倍。 DLA的当前实现依赖于直接入射在加速结构上的自由空间激光器,从而限制了该技术的可扩展性和可集成性。我们展示了使用光子逆设计方法设计的集成波导的DLA的实验演示。通过将测得的电子能谱与粒子跟踪模拟进行比较,我们推断出在30微米范围内的最大能量增益为0.915千电子伏特,对应于每米30.5兆电子伏特的加速度梯度。片上加速为完全集成的兆电子伏特级DLA提供了可能性。

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