Grating monochromator for soft X-ray self-seeding the European XFEL
Svitozar Serkez, Gianluca Geloni, Vitali Kocharyan, Evgeni Saldin

TL;DR
This paper presents a compact, wave optics-based design for a grating monochromator in soft X-ray self-seeding at the European XFEL, achieving high spectral resolution and power enhancement without the need for an exit slit.
Contribution
The study introduces a wave optics analysis for a slitless grating monochromator, demonstrating its effectiveness for soft X-ray self-seeding in XFELs with high resolution and simplified setup.
Findings
Achieves a resolving power of about 7000 without an exit slit.
Simulates FEL power reaching 1 TW with enhanced spectral density.
Wave optics method effectively evaluates monochromator performance and efficiency.
Abstract
Self-seeding is a promising approach to significantly narrow the SASE bandwidth of XFELs to produce nearly transform-limited pulses. The implementation of this method in the soft X-ray wavelength range necessarily involves gratings as dispersive elements. We study a very compact self-seeding scheme with a grating monochromator originally designed at SLAC, which can be straightforwardly installed in the SASE3 type undulator beamline at the European XFEL. The monochromator design is based on a toroidal VLS grating working at a fixed incidence angle mounting without entrance slit. It covers the spectral range from 300 eV to 1000 eV. The optical system was studied using wave optics method (in comparison with ray tracing) to evaluate the performance of the self-seeding scheme. Our wave optics analysis takes into account the actual beam wavefront of the radiation from the coherent FEL source,…
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Taxonomy
TopicsParticle Accelerators and Free-Electron Lasers · Advanced X-ray Imaging Techniques · X-ray Spectroscopy and Fluorescence Analysis
