论文标题
内部梁切开脉冲压缩机,具有补偿时空耦合,用于高能量Petawatt激光器
In-house beam-splitting pulse compressor with compensated spatiotemporal coupling for high-energy petawatt lasers
论文作者
论文摘要
实现Kilojoule级高能量Petawatt(PW)最严重的瓶颈之一,到具有PS到FS Pulse持续时间的数百个Petawatt(100pw)激光器,是压缩机中与仪表尺寸的持续时间一样大的要求,以避免激光诱导的损坏对光栅的损坏。但是,到目前为止,这种具有高质量的仪表尺寸的光栅很难生产。在这里,我们根据属性的特性提出了一个新的内部梁切开压缩机,该属性是光栅阈值取决于脉冲持续时间。新方案将同时提高稳定性,节省昂贵的光栅并简化压缩机的大小,因为分梁共享前两个平行光栅。此外,基于以下事实:玻璃板的传输波前可以比大光栅的衍射波前更好,更精确地控制,然后提出了带有设计的带旋转波前的玻璃板,以补偿第二个带来的波动变形,第二件光栅和其他光学片段,以及其他板块内部的光束。这种简单且经济的方法可以补偿压缩机中的时空失真,然后改善局灶性强度,否则由于角裂痕而无法通过压缩机外的可变形镜补偿。新型压缩机连同多光束瓷砖孔隙组合方案一起提供了一种新方案,以实现高能量PW-100PW激光器,甚至还提供了将来具有相对较小光栅的Exexawatt激光器。
One of the most serious bottleneck on achieving kilojoule-level high-energy petawatt (PW) to hundreds-petawatt (100PW) lasers with ps to fs pulse duration is the requirement of as large as meter-sized gratings in the compressor so as to avoid the laser-induced damage to the gratings. However, this kind of meter-sized grating with high quality is hard to manufacture so far. Here, we propose a new in-house beam-splitting compressor based on the property that the damage threshold of gratings depend on the pulse duration. The new scheme will simultaneously improve the stability, save expensive gratings, and simplify the size of compressor because the split beams share the first two parallel gratings. Furthermore, based on the fact that the transmitted wavefront of a glass plate can be much better and more precisely controlled than that of the diffraction wavefront of a large grating, then glass plates with designed transmitted wavefront are proposed to compensate the wavefront distortion introduced by the second, the third gratings, and other optics in-house such as the beam splitter. This simple and economical method can compensate the space-time distortion in the compressor and then improve the focal intensity, which otherwise cannot be compensated by the deformable mirror outside the compressor due to angular chirp. Together with multi-beams tiled-aperture combining scheme, the novel compressor provides a new scheme to achieve high-energy PW-100PW lasers or even exawatt lasers with relatively small gratings in the future.