High Harmonic Generation Seeding Echo-Enabled Harmonic Generation toward a Storage Ring-Based Tender and Hard X-ray-Free Electron Laser

Q3 Physics and Astronomy Instruments Pub Date : 2024-06-02 DOI:10.3390/instruments8020035
Xi Yang, Lihua Yu, V. Smaluk, T. Shaftan
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Abstract

To align with the global trend of integrating synchrotron light source (SLS) and free electron laser (FEL) facilities on one site, in line with examples such as SPring-8 and SACLA in Japan and ELETTRA and FERMI in Italy, we actively explore FEL options leveraging the ultralow-emittance electron beam of the NSLS-II upgrade. These options show promising potential for synergy with storage ring (SR) operations, thereby significantly enhancing our facility’s capabilities. Echo-enabled harmonic generation (EEHG) is well-suited to SR-based FELs, and has already been demonstrated with the capability of generating extremely narrow bandwidth as well as high brightness, realized using diffraction-limited short pulses in transverse planes and Fourier transform-limited bandwidth in the soft X-ray spectrum. However, regarding a conventional EEHG scheme, the combination of the shortest seed laser wavelength (256 nm) and highest harmonic (200) sets the short wavelength limit to λ = 1.28 nm. To further extend the short wavelength limit down to the tender and hard X-ray region, a vital option is to shorten the seed laser wavelength. Thanks to recent advances in high harmonic generation (HHG), packing 109 photons at one harmonic within a few-femtosecond pulse could turn such a novel HHG source into an ideal seeding for EEHG. Thus, compared to the cascaded EEHG, the HHG seeding option could not only lower the cost, but also free the SR space for accommodating more user beamlines. Moreover, to mitigate the SASE background noise on the sample and detector, we combine the HHG seeding EEHG with the crab cavity short pulse scheme for maximum benefit.
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高次谐波发生种子回声支持谐波发生,实现基于存储环的无 X 射线电子激光嫩硬器
为了顺应将同步辐射光源(SLS)和自由电子激光器(FEL)设施整合在同一地点的全球趋势,与日本的 SPring-8 和 SACLA 以及意大利的 ELETTRA 和 FERMI 等实例保持一致,我们积极探索利用 NSLS-II 升级版的超低幅射电子束的自由电子激光器方案。这些方案显示出与存储环(SR)运行协同的巨大潜力,从而大大增强了我们的设施能力。回声驱动谐波发生(EEHG)非常适合基于SR的FEL,并且已经证明它能够产生极窄的带宽和高亮度,利用横向平面的衍射限制短脉冲和软X射线光谱的傅里叶变换限制带宽来实现。然而,就传统的 EEHG 方案而言,最短种子激光波长(256 nm)和最高谐波(200)的组合将短波长限制在 λ = 1.28 nm。要想进一步将短波长限制扩展到嫩X射线和硬X射线区域,一个重要的选择就是缩短种子激光波长。由于最近在高次谐波发生(HHG)方面取得的进展,在几分之一秒的脉冲内将 109 个光子聚集在一个谐波上,可以将这种新型 HHG 光源转变为 EEHG 的理想种子光源。因此,与级联 EEHG 相比,HHG 种子方案不仅能降低成本,还能腾出 SR 空间以容纳更多用户光束线。此外,为了减轻样品和探测器上的 SASE 背景噪声,我们将 HHG 种子 EEHG 与蟹腔短脉冲方案相结合,以获得最大效益。
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来源期刊
Instruments
Instruments Physics and Astronomy-Instrumentation
CiteScore
2.60
自引率
0.00%
发文量
70
审稿时长
11 weeks
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