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High-Order-Harmonic Generation from a Relativistic Circularly Polarized Laser Interacting with Over-Dense Plasma Grating

High-Order-Harmonic Generation from a Relativistic Circularly Polarized Laser Interacting with Over-Dense Plasma Grating
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摘要 The simple surface current model is extended to study the generation of high-order harmonics for a relativistic circularly polarized laser pulse interacting with a plasma grating surface. Both exact relativistic electron dynamics and optical interference of surface periodic structure are considered. It is found that high order harmonics in the specular direction are obviously suppressed whereas the harmonics of the grating periodicity are strongly enhanced and folded into small solid angles with respect to the surface direction. The conversion efficiency of certain harmonics is five orders of magnitude higher than that of the planar target cases. It provides an effective approach to generate a coherent radiation within the so-called 'water window' while maintaining high conversion efficiency and narrow angle spread. The simple surface current model is extended to study the generation of high-order harmonics for a relativistic circularly polarized laser pulse interacting with a plasma grating surface. Both exact relativistic electron dynamics and optical interference of surface periodic structure are considered. It is found that high order harmonics in the specular direction are obviously suppressed whereas the harmonics of the grating periodicity are strongly enhanced and folded into small solid angles with respect to the surface direction. The conversion efficiency of certain harmonics is five orders of magnitude higher than that of the planar target cases. It provides an effective approach to generate a coherent radiation within the so-called 'water window' while maintaining high conversion efficiency and narrow angle spread.
作者 Xia-Zhi Li Hong-Bin Zhuo De-Bin Zou Shi-Jie Zhang Hong-Yu Zhou Na Zhao Yue Lang De-Yao Yu 李夏至;卓红斌;邹德滨;张世杰;周泓宇;赵娜;郎跃;余德尧(College of Science, National University of Defense Technology, Changsha 410073 IFSA Collaborative Innovation Center, Shanghai Jiao Tong University, Shanghai 200240 Institute of Applied Physics and Computational Mathematics, Beijing 100094)
出处 《Chinese Physics Letters》 SCIE CAS CSCD 2017年第9期49-53,共5页 中国物理快报(英文版)
基金 Supported by the National Natural Science Foundation of China under Grant Nos 11375265,11475259 and 11675264 the National Basic Research Program of China under Grant No 2013CBA01504 the Science Challenge Project under Grant No JCKY2016212A505
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