高能少周期脉冲:后压缩技术

IF 7.7 2区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY Advances in Physics: X Pub Date : 2021-01-01 DOI:10.1080/23746149.2020.1845795
T. Nagy, P. Simon, L. Veisz
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引用次数: 39

摘要

当代超快科学需要可靠的高能少周期光脉冲源。目前能够产生这种脉冲的方法有两种:激光短脉冲后压缩和光参量啁啾脉冲放大(OPCPA)。本文对基于光学克尔效应或电离的后压缩技术进行了全面的概述,特别强调了能量和功率缩放。讨论了相关类型的后压缩技术,包括块状材料中的自由传播、多板连续体生成、多通细胞、细丝、光子晶体光纤、空心芯光纤和自压缩技术。我们提供了物理学的简短理论概述以及对现有后压缩实验实现的深入描述,特别是那些可以提供mj级脉冲能量的少周期脉冲持续时间的实验实现。从脉冲能量、脉冲持续时间、峰值功率和平均功率等重要性能指标对这些方法的实验性能进行了比较。最后给出了一些展望,强调了该技术未来的发展趋势。图形抽象
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High-energy few-cycle pulses: post-compression techniques
ABSTRACT Contemporary ultrafast science requires reliable sources of high-energy few-cycle light pulses. Currently two methods are capable of generating such pulses: post compression of short laser pulses and optical parametric chirped-pulse amplification (OPCPA). Here we give a comprehensive overview on the post-compression technology based on optical Kerr-effect or ionization, with particular emphasis on energy and power scaling. Relevant types of post compression techniques are discussed including free propagation in bulk materials, multiple-plate continuum generation, multi-pass cells, filaments, photonic-crystal fibers, hollow-core fibers and self-compression techniques. We provide a short theoretical overview of the physics as well as an in-depth description of existing experimental realizations of post compression, especially those that can provide few-cycle pulse duration with mJ-scale pulse energy. The achieved experimental performances of these methods are compared in terms of important figures of merit such as pulse energy, pulse duration, peak power and average power. We give some perspectives at the end to emphasize the expected future trends of this technology. Graphical abstract
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来源期刊
Advances in Physics: X
Advances in Physics: X Physics and Astronomy-General Physics and Astronomy
CiteScore
13.60
自引率
0.00%
发文量
37
审稿时长
13 weeks
期刊介绍: Advances in Physics: X is a fully open-access journal that promotes the centrality of physics and physical measurement to modern science and technology. Advances in Physics: X aims to demonstrate the interconnectivity of physics, meaning the intellectual relationships that exist between one branch of physics and another, as well as the influence of physics across (hence the “X”) traditional boundaries into other disciplines including: Chemistry Materials Science Engineering Biology Medicine
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