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Reflection zone plate concept for resonant inelastic x-ray scattering spectrometry
Author(s) -
Christoph Braig,
Heike Löchel,
Jens Rehanek,
Alexander Firsov,
Maria Brzhezinskaya,
A. Erko
Publication year - 2017
Publication title -
applied optics
Language(s) - English
Resource type - Journals
ISSN - 0003-6935
DOI - 10.1364/ao.56.000515
Subject(s) - optics , physics , spectrometer , scattering , resonant inelastic x ray scattering , synchrotron , x ray optics , reflection (computer programming) , spectral line , inelastic scattering , arc (geometry) , energy (signal processing) , x ray , inelastic neutron scattering , computer science , astronomy , programming language , geometry , mathematics , quantum mechanics
We simulate a proof-of-principle design of a wavelength dispersive, parallel spectrometer for use in resonant inelastic x-ray scattering (RIXS). The instrument relies on a multiple-channel reflection zone plate (RZP) array, enabling the recording of fluorescence spectra from an acceptance angle of 18  arc min×19  arc min with a mainly source-size-limited resolving power of (0.2-2.6)×10 4 over an energy range of 21 eV at the L-edge of Fe around 715 eV. An optimal two-dimensional signal readout preserves the spectral resolution to a large extent for widely open exit apertures of ≳50  mm 2 . The geometrical parameters are matched to the PEAXIS end station at the BESSY II synchrotron facility, and relaxed RZP line densities of <9×10 2   mm -1 assure the technical feasibility. An error budget estimation with respect to fabrication and alignment tolerances provides the link to real, RZP-based RIXS experiments in the future.

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