论文标题

电介质激光驱动器的设计研究

Design Study of a Dielectric Laser Undulator

论文作者

Schmid, Steffen A., Niedermayer, Uwe

论文摘要

介电激光加速度(DLA)从光向结构的光学近场中实现了显着的梯度。相对于电子束倾斜介电光栅会导致偏转力,并且DLA结构可以用作微芯片解散器。我们通过分析和数值模拟研究了这些结构中的光束动力学。一个至关重要的挑战是保持光束聚焦,尤其是沿狭窄通道的方向。为此目的优化了交替的相聚焦方案,并获得了匹配的晶格功能。我们通过严格周期性的光栅和精心设计的同步不匹配来区分光栅和异步操作中的同步操作。尤其是异步DLA Ududator是一种有前途的方法,因为对于焦点晶格设计来说,简单的,可商购的光栅就足够了。我们为这些结构中的辐射产生实验铺平了道路,并提供了发射辐射波长和功率的估计。分析模型通过专用DLA仿真工具DLATRACK6D和ASTRA中的数值模拟进行了验证,其中基础激光场由CST Studio计算。

Dielectric laser acceleration (DLA) achieves remarkable gradients from the optical near fields of a grating structure. Tilting the dielectric grating with respect to the electron beam leads to deflection forces and the DLA structure can be utilized as a microchip undulator. We investigate the beam dynamics in such structures analytically and by numerical simulations. A crucial challenge is to keep the beam focused, especially in direction of the narrow channel. An alternating phase focusing scheme is optimized for this purpose and matched lattice functions are obtained. We distinguish synchronous operation with phase jumps in the grating and asynchronous operation with a strictly periodic grating and well-designed synchronicity mismatch. Especially the asynchronous DLA undulator is a promising approach, since a simple, commercially available grating suffices for the focusing lattice design. We pave the way towards experiments of radiation generation in these structures and provide estimates of the emitted radiation wavelength and power. The analytical models are validated by numerical simulations in the dedicated DLA simulation tool DLAtrack6D and Astra, where the underlying laser fields are computed by CST Studio.

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