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超强超快激光物理与前沿应用

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超强超快激光的出现与迅速发展开辟了原子分子物理、强场物理、等离子体物理等学科的诸多前沿方向,促进了物质科学、生命科学和信息能源等领域的创新发展.以超强超快激光的强度为尺标,首先介绍强激光驱动的非线性原子分子物理,其次是更高光强下的超强激光与相对论等离子体物理,最后概述强场超快的交叉前沿应用.在每个领域的学科发展背景下,重点概述中国科学院上海光学精密机械研究所强场激光物理国家重点实验室长期深耕超强超快激光物理与前沿应用取得的系列进展与成果,主要包括小型化粒子加速与辐射、极端强场效应、高次谐波与阿秒物理、空气成丝与空气激光、超快激光加工、微纳激光技术等.
Physics and Applications of Superintense and Ultrafast Lasers
Significance The appearance and rapid development of superintense and ultrafast laser have opened up many frontier areas in subjects such as atomic and molecular physics,strong field physics,and plasma physics,and superintense and ultrafast laser itself has become a powerful tool in numerous applications.The extreme nonlinear interaction between superintense and ultrafast lasers and atomic or molecular systems induces strong field ionization,attosecond radiation,femtosecond laser filamentation,and air lasing.Attosecond physics may develop new technological means for the study of electronic dynamics in complex systems that are relevant to physics,chemistry,biomedicine and other subjects.Laser filamentation and air lasing have brought new opportunities for applications based on laser plasma associated radiation,laser atmospheric remote sensing and material analysis,weather modification,and laser material processing.With the increase of laser intensity,physical processes enter the relativistic plasma regime,where many applications have been developed in laser-driven particle acceleration,laser-driven high-energy radiation sources,ultrafast electronic dynamics,laser nuclear physics,and laboratory astrophysics.Laser-driven ultra-high-gradient particle accelerators and high-energy ultrafast radiation are advantageous in producing compact particle and radiation sources with ultra-high peak brightness and ultrafast time duration,thus are unique in several key applications.Especially,laser-driven plasma wakefield acceleration is promising in generating high energy electrons to develop table-top X-ray free electron lasers.On the other hand,laser-driven ion acceleration is believed to bring new opportunities in tumor therapy,proton imaging,and fast ignition fusion.As the laser intensity further increases,the extreme strong field effect gradually becomes apparent and it enters the strong field quantum electrodynamics(QED)regime,resulting in a series of new phenomena such as quantum gamma radiation,generation of electron-positron pairs,vacuum polarization,QED cascades and so on.These studies would extend boundaries of laser-matter interaction.New properties such as spin and orbital angular momentum also emerge as new degree of freedom in laser-plasma interaction.The interaction between superintense laser and plasma is an important means of generating radiation at different wavelengths.The study of terahertz radiation sources driven by superintense lasers can further improve the laser energy conversion efficiency.The free electron and quasi-particle radiation driven by superintense laser is of great significance for the development of miniaturized and integrated new coherent light sources and terahertz-driven electron sources.Ultrafast lasers provide processing accuracy beyond the limits of optical diffraction,enabling high-quality micro-nano processing.In addition,micro-nano lasers are important for promoting the miniaturization and integration of optoelectronic devices.Progress This review first introduces nonlinear atomic and molecular physics driven by ultrafast lasers,followed by superintense lasers and relativistic plasma physics at higher intensities,and finally reviews the cross-disciplinary frontier applications of superintense ultrafast laser.This review will highlight the progresses and achievements made by the State Key Laboratory of High Field Laser Physics,Shanghai Institute of Optics and Fine Mechanics,Chinese Academy of Sciences,in the long-term dedicated research on superintense ultrafast laser physics and its frontier applications.The laboratory has made significant progresses in the generation and control of high-order harmonics and single attosecond pulse,high brightness high-order harmonic coherent light sources,water window or keV high-order harmonic generation driven by mid-infrared wavelength lasers,and high-order harmonic generation in condensed matter.Important progresses in femtosecond laser filamentation measurement and control,femtosecond laser weather modification,and air lasing are also elaborated.In recent years,the laboratory has developed stable and usable high-quality laser-driven electron sources.The laser energy conversion efficiency and beam quality of high-energy and ultrafast radiation sources have also been improved.Compact free electron laser in the extreme ultraviolet band has been demonstrated based on laser-driven wakefield electrons for the first time in the world.Laser-driven ion acceleration has seen rapid development in the past decades,where new acceleration mechanisms have been proposed,and the laser energy conversion efficiency and the cut-off energies of protons are now sitting in the first class in the world.In the strong field QED regime,the radiation-reaction trapping of electrons and the upper limit of laser intensity caused by non-ideal vacuum are discovered.The exploits of vortex laser on particle acceleration and secondary radiations are developed in the laboratory.The laboratory has also successfully generated positrons using superintense laser and proposed new schemes for the detection of dark matter particles such as axion.Significant progress in the generation of intense terahertz radiation has been made.The quasi-particle radiation amplification mechanism and electron acceleration driving the terahertz radiation have been explored,which provides a unique platform for surface light sources and applications.In addition,a number of research achievements have been made in ultrafast laser micro-nano processing and micro-nano lasers.Conclusions and Prospects The development and application of superintense ultrafast laser technology have significant impacts on disciplines such as physics,chemistry,and biology.It is a highly competitive area of research worldwide.The progresses highlighted in this review will further guide the development of advanced laser technology and light sources,compact particle accelerators,and extend our knowledge on light-matter interaction.It is now an important stage to bring the research in laboratories to real world applications,where key aspects of the interaction should be controllable and the whole system must be stable or even cost efficient.On the other hand,the extreme field provided by 10-100 PW lasers shows unparalleled capacities in fundamental research,such as strong field QED,high energy density physics or even dark matter search.It relies on joint efforts among multiple disciplines such as plasma physics,theoretical physics,particle and nuclear physics and so on.

ultrafast opticssuperintense ultrafast laserhigh-order harmonicsattosecond pulselaser-driven particle accelerationlaser-driven secondary radiation sourcestrong field quantum electrodynamicsfemtosecond laser micro-nano processingair filamentation

吉亮亮、王文涛、田野、姚金平、郑颖辉、王铁军、王文鹏、白亚、林锦添、孙海轶、杜鹃、张辉、赵全忠、刘鹏、曾志男、梁晓燕、刘建胜、沈百飞、程亚、冷雨欣、李儒新、徐至展

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中国科学院上海光学精密机械研究所强场激光物理国家重点实验室,上海 201800

张江实验室,上海 201210

国科大杭州高等研究院物理与光电工程学院,浙江杭州 310024

上海师范大学物理系,上海 200234

华东师范大学物理与电子科学学院,上海 200241

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超快光学 超强超快激光 高次谐波 阿秒脉冲 激光粒子加速 激光驱动次级辐射源 强场量子电动力学 飞秒激光微纳加工 空气成丝

2024

中国激光
中国光学学会 中科院上海光机所

中国激光

CSTPCD北大核心
影响因子:2.204
ISSN:0258-7025
年,卷(期):2024.51(11)
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