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极紫外光梳的频谱拓展与功率提升(特邀)

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频谱覆盖范围和输出功率是衡量极紫外光学频率梳(简称"极紫外光梳")性能和实现其广泛应用的重要参考依据。本研究利用固体芯光子晶体光纤展宽驱动光光谱,采用啁啾镜精确补偿色散,以实现驱动光源脉宽的压缩,进而提升飞秒共振增强腔内峰值功率,达到拓展极紫外光梳频谱覆盖范围与提升其输出功率的目的。最终实现了重复频率约为80 MHz、平均功率约为50 W、脉宽约为56 fs的驱动光脉冲,以及高达9。3×1013 W/cm2的峰值光强。结合Xe、Kr以及Ar的高次谐波产生过程,实现了最短波长约为30 nm(对应35阶谐波)的极紫外光梳,其61 nm(对应17阶谐波)处的耦合输出功率可达9。3 μW。本研究为后续利用极紫外光梳实现少电子原子分子的精密光谱测量奠定了窄线宽光源方面的基础。
Spectrum Expansion and Power Enhancement of an Extreme Ultraviolet Optical Frequency Comb(Invited)
Objective Extreme ultraviolet(XUV)optical frequency combs have significant applications in precision measurement physics and ultrafast science.They are essential tools for high-resolution XUV spectroscopy,such as precise spectroscopic measurements of few-electron atomic or ionic systems(e.g.,He+and Li+),which probe the limits of quantum electrodynamics(QED)theory.Combining XUV frequency comb spectroscopy with thorium-229 nuclear transition could advance the development of a novel optical clock—the nuclear optical clock.In ultrafast science,utilizing the high-order harmonic generation(HHG)process inherent in XUV frequency comb generation reveals ultrafast phenomena under conditions of extremely high repetition rates(>50 MHz).In addition,XUV frequency combs provide high-repetition-rate and low-flux XUV light sources,which facilitate time-and angle-resolved photoelectron spectroscopy studies.The spectral coverage and output power are critical parameters for assessing the performance of an XUV comb and realizing its broad applications.Extending its spectral coverage and increasing the output power are core objectives in developing XUV combs and in the present study.Methods To optimize the key parameters of an XUV comb,we enhance the peak power within the femtosecond enhancement cavity(fsEC)by compressing the pulse duration of the driving laser source.Firstly,we utilize a solid-core photonic crystal fiber for spectral broadening.The driving laser,assisted by our self-constructed beam stabilization system,is coupled into the solid-core photonic crystal fiber.The fiber's photonic bandgap structure enables high-efficiency transmission of specific wavelengths through the solid fiber core,resulting in spectral broadening via the self-phase modulation(SPM)effect.We then use multiple chirped mirrors for compressing pulse duration.The multilayer structure of the chirped mirrors ensures precise dispersion compensation by providing different group delays for different frequency components.Finally,in the high-order harmonic generation and output coupling stage,we employ a bow-tie-shaped fsEC with six mirrors and in-cavity focusing to increase the peak power of the driving laser.The amplified driving laser pulses interact with the gaseous medium at the focal point,generating XUV light,which is then coupled out by either an Al2O3 Brewster plate or a micro-nano grating mirror(GM).Results and Discussions Our driving laser has a repetition rate of approximately 80 MHz,a maximum output power of 100 W,a central wavelength of 1035 nm,and a pulse duration of 490 fs.Fig.2(a)shows the spectral broadening achieved with the solid-core photonic crystal fiber,and Fig.2(b)shows the pulse shapes before and after compression.We successfully compress the pulse duration from 490 fs to 56 fs using chirped mirrors.With the aid of the fsEC and an amplification factor of over 100,we achieve a peak intensity of 9.3×1013 W/cm² at the focal point.Subsequently,we use an Al2O3 Brewster plate to couple out the XUV radiation and image the harmonic profile on a sodium salicylate plate.Figs.5(a)‒(c)show the fluorescence images for Xe,Kr,and Ar as the gaseous medium,respectively.The discrete spots on the fluorescence screen correspond to different harmonic orders.From the fluorescence images,we determine that the highest harmonic order generated is the 35th,corresponding to a photonic energy of about 42 eV(approximately 30 nm in wavelength).By replacing the output coupling device with a GM,we measure the power of the 17th harmonic(61 nm)and obtain a maximum average power of 9.3 μW when using Xe as the working gas,as shown in Fig.6.Conclusions XUV optical frequency combs are high-quality,narrow linewidth,table-top coherent XUV light sources.In this study,we aim to expand the spectrum and enhance the power of the XUV comb by compressing the pulse duration of the driving laser and increasing the peak power within the femtosecond enhancement cavity.Using a solid-core photonic crystal fiber for spectral broadening and chirped mirrors for precise dispersion compensation,we achieve a pulse duration of about 56 fs and a peak intensity of 9.3×1013 W/cm2 within the fsEC.Using high-order harmonic generation processes with noble gases such as Xe,Kr,and Ar,we achieve an XUV comb with the shortest wavelength of 30 nm(35th harmonic)and an output power of 9.3 μW at 61 nm(17th harmonic).This study lays a solid foundation for the succeeding precision spectroscopic measurements of few-electron atoms and molecules using the XUV optical frequency comb.

ultrafast opticsextreme ultraviolet optical frequency combfemtosecond enhancement cavitypulse duration compression

张恒之、朱穆峰、肖峥嵘、华林强、许松坡、刘阳妮、柳晓军

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中国科学院精密测量科学与技术创新研究院波谱与原子分子物理国家重点实验室,湖北 武汉 430071

中国科学院大学,北京 100049

重庆电子工程职业学院,重庆 401331

超快光学 极紫外光学频率梳 飞秒共振增强腔 脉宽压缩

国家自然科学基金国家自然科学基金国家自然科学基金中国科学院稳定支持基础研究领域青年团队计划

U21A204351239382392265206YSBR-055

2024

光学学报
中国光学学会 中国科学院上海光学精密机械研究所

光学学报

CSTPCD北大核心
影响因子:1.931
ISSN:0253-2239
年,卷(期):2024.44(17)