Pigeon J J, Franke P, Lim Pac Chong M, Katz J, Boni R, Dorrer C, Palastro J P, Froula D H
Opt Express. 2024 Jan 1;32(1):576-585. doi: 10.1364/OE.506112.
Flying-focus pulses promise to revolutionize laser-driven secondary sources by decoupling the trajectory of the peak intensity from the native group velocity of the medium over distances much longer than a Rayleigh range. Previous demonstrations of the flying focus have either produced an uncontrolled trajectory or a trajectory that is engineered using chromatic methods that limit the duration of the peak intensity to picosecond scales. Here we demonstrate a controllable ultrabroadband flying focus using a nearly achromatic axiparabola-echelon pair. Spectral interferometry using an ultrabroadband superluminescent diode was used to measure designed super- and subluminal flying-focus trajectories and the effective temporal pulse duration as inferred from the measured spectral phase. The measurements demonstrate that a nearly transform- and diffraction-limited moving focus can be created over a centimeter-scale-an extended focal region more than 50 Rayleigh ranges in length. This ultrabroadband flying-focus and the novel axiparabola-echelon configuration used to produce it are ideally suited for applications and scalable to >100 TW peak powers.
飞行聚焦脉冲有望彻底改变激光驱动的二次光源,通过在比瑞利长度长得多的距离上,将峰值强度的轨迹与介质的固有群速度解耦。此前飞行聚焦的演示要么产生不受控制的轨迹,要么产生使用色散方法设计的轨迹,这种方法将峰值强度的持续时间限制在皮秒尺度。在此,我们展示了一种使用近乎消色差的轴抛物线 - 阶梯对的可控超宽带飞行聚焦。使用超宽带超发光二极管的光谱干涉测量法,用于测量设计的超光速和亚光速飞行聚焦轨迹以及从测量的光谱相位推断出的有效时间脉冲持续时间。测量结果表明,可以在厘米尺度上创建一个近乎变换和衍射极限的移动焦点——一个长度超过50个瑞利长度的扩展聚焦区域。这种超宽带飞行聚焦以及用于产生它的新型轴抛物线 - 阶梯配置非常适合各种应用,并且可扩展到超过100太瓦的峰值功率。