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来自激光细丝的功率可扩展亚周期脉冲。

Power-scalable subcycle pulses from laser filaments.

作者信息

Voronin A A, Zheltikov A M

机构信息

Physics Department, International Laser Center, M. V. Lomonosov Moscow State University, Moscow 119992, Russia.

Department of Physics and Astronomy, Texas A&M University, 77843 College Station TX, USA.

出版信息

Sci Rep. 2017 Apr 3;7:36263. doi: 10.1038/srep36263.

Abstract

Compression of optical pulses to ultrashort pulse widths using methods of nonlinear optics is a well-established technology of modern laser science. Extending these methods to pulses with high peak powers, which become available due to the rapid progress of laser technologies, is, however, limited by the universal physical principles. With the ratio P/P of the peak power of an ultrashort laser pulse, P, to the critical power of self-focusing, P, playing the role of the fundamental number-of-particles integral of motion of the nonlinear Schrödinger equation, keeping this ratio constant is a key principle for the power scaling of laser-induced filamentation. Here, we show, however, that, despite all the complexity of the underlying nonlinear physics, filamentation-assisted self-compression of ultrashort laser pulses in the regime of anomalous dispersion can be scaled within a broad range of peak powers against the principle of constant P/P. We identify filamentation self-compression scaling strategies whereby subcycle field waveforms with almost constant pulse widths can be generated without a dramatic degradation of beam quality within a broad range of peak powers, varying from just a few to hundreds of P.

摘要

利用非线性光学方法将光脉冲压缩至超短脉冲宽度是现代激光科学中一项成熟的技术。然而,由于激光技术的快速发展,将这些方法扩展到具有高峰值功率的脉冲时,会受到普遍物理原理的限制。超短激光脉冲的峰值功率(P)与自聚焦临界功率(P)的比值(P/P),起着非线性薛定谔方程基本运动粒子数积分的作用,保持该比值恒定是激光诱导丝状化功率缩放的关键原则。然而,我们在此表明,尽管潜在的非线性物理过程十分复杂,但在反常色散 regime 中,超短激光脉冲的丝状化辅助自压缩可以在广泛的峰值功率范围内,违背恒定(P/P)原则进行缩放。我们确定了丝状化自压缩缩放策略,通过该策略可以在广泛的峰值功率范围内(从仅几个(P)到数百个(P)不等)生成脉冲宽度几乎恒定的亚周期场波形,而光束质量不会显著下降。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/550c/5377262/56b4792698b4/srep36263-f1.jpg

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