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High-field nonlinear optical response and phase control in a dielectric laser accelerator

机译:介电激光加速器中的高场非线性光学响应和相位控制

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Advances in ultrafast laser technology and nanofabrication have enabled a new class of particle accelerator based upon miniaturized laser-driven photonic structures. However, developing a useful accelerator based on this approach requires control of the particle dynamics at field intensities approaching the damage limit. We measure acceleration in a fused silica dielectric laser accelerator driven by fields of up to 9 GV m−1 and observe a record 1.8 GV m−1 in the accelerating mode. At these intensities the dielectric is driven beyond its linear response and self-phase modulation changes the phase velocity of the accelerating mode, reducing the average gradient to 850 MeV m−1. We show that free-space optics can be used to compensate this dephasing and demonstrate that tailoring the laser phase and amplitude can facilitate optimization of the beam dynamics. This could enable MeV scale energy gain in a single stage and pave the way towards applications in scientific, industrial, and medical fields.
机译:超快激光技术和纳米制造技术的进步,使基于微型激光驱动光子结构的新型粒子加速器成为可能。但是,基于此方法开发有用的加速器需要在接近破坏极限的场强下控制粒子动力学。我们在由高达9 GV m-1的磁场驱动的熔融石英介电激光加速器中测量加速度,并在加速模式下观察到创纪录的1.8 GV m-1。在这些强度下,电介质被驱动超出其线性响应,并且自相位调制改变了加速模式的相速度,从而将平均梯度减小到850 MeV m-1。我们展示了自由空间光学器件可用于补偿这种相移,并展示了定制激光相位和振幅可以促进光束动力学的优化。这可以在单个阶段实现MeV规模的能量获取,并为在科学,工业和医学领域的应用铺平道路。

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