A new class of variable-radii diffraction optics for high-resolution x-ray spectroscopy at the National Ignition Facility (invited)

Author:

Pablant N. A.1ORCID,Bitter M.1,Gao L.1ORCID,Dozieres M.2ORCID,Efthimion P. C.1ORCID,Frisch G.3,Hill K. W.1ORCID,Hordin T.3,Kozioziemski B.4ORCID,Krygier A.4ORCID,MacDonald M. J.4ORCID,Ose N.4,Ping Y.4ORCID,Sagan D.5ORCID,Schneider M. B.4ORCID,Sio H.4ORCID,Stoupin S.4ORCID,Yakusevitch Y.6ORCID

Affiliation:

1. Princeton Plasma Physics Laboratory, 100 Stellarator Road, Princeton, New Jersey 08543, USA

2. General Atomics, 3550 General Atomics Court, San Diego, California 92186, USA

3. Optimax Systems, Inc., 6367 Dean Parkway, Ontario, New York 14519, USA

4. Lawrence Livermore National Laboratory, 7000 East Ave., Livermore, California 94550, USA

5. Cornell University, 616 Thurston Ave., Ithica, New York 14853, USA

6. University of California Santa San Diego, 9500 Gilman Dr., La Jolla, California 92093, USA

Abstract

A new class of crystal shapes has been developed for x-ray spectroscopy of point-like or small (a few mm) emission sources. These optics allow for dramatic improvement in both achievable energy resolution and total throughput of the spectrometer as compared with traditional designs. This class of crystal shapes, collectively referred to as the Variable-Radii Spiral (VR-Spiral), utilize crystal shapes in which both the major and minor radii are variable. A crystal using this novel VR-Spiral shape has now been fabricated for high-resolution Extended X-ray Absorption Fine Structure (EXAFS) experiments targeting the Pb-L3 (13.0 keV) absorption edge at the National Ignition Facility. The performance of this crystal has been characterized in the laboratory using a microfocus x-ray source, showing that high-resolution high-throughput EXAFS spectra can be acquired using this geometry. Importantly, these successful tests show that the complex three-dimensional crystal shape is manufacturable with the required precision needed to realize the expected performance of better than 5 eV energy resolution while using a 30 mm high crystal. An improved generalized mathematical form for VR-Spiral shapes is also presented allowing improved optimization as compared to the first sinusoidal-spiral based design. This new formulation allows VR-Spiral spectrometers to be designed at any magnification with optimized energy resolution at all energies within the spectrometer bandwidth.

Funder

Fusion Energy Sciences

Publisher

AIP Publishing

Subject

Instrumentation

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