The Marshall Grazing Incidence X-ray Spectrometer (MaGIXS)

Author:

Champey P. R.1ORCID,Winebarger A. R.1,Kobayashi K.1,Athiray P. S.12,Hertz E.3,Savage S.1,Beabout B.1,Beabout D.1,Broadway D.1,Bruccoleri A. R.4,Cheimets P.3,Davis J.1,Duffy J.1,Golub L.3,Gregory D. A.5,Griffith C.1,Haight H.1,Heilmann R. K.6,Hogue B.1,Hohl J.3,Hyde D.1,Kegley J.1,Kolodzieczjak J.1,Ramsey B.1,Ranganathan J.12,Robertson B.1,Schattenburg M. L.6,Speegle C. O.1,Vigil G.1,Walsh R.7,Weddenorf B.8,Wright E.1

Affiliation:

1. NASA George C. Marshall Space Flight Center, Huntsville, AL 35812, USA

2. Center for Space Plasma and Aeronomic Research, University of Alabama in Huntsville, AL 35899, USA

3. Center for Astrophysics – Harvard & Smithsonian, Cambridge, MA 02138, USA

4. Izentis LLC, Cambridge, MA 02139, USA

5. Department of Physics, University of Alabama in Huntsville, Huntsville, AL 35899, USA

6. Massachusetts Institute of Technology, Cambridge, MA 02139, USA

7. University of Central Lancashire, Preston, PR1 2HE, UK

8. Weddendorf Design, Inc., Huntsville, AL 35803, USA

Abstract

The Marshall Grazing Incidence X-ray Spectrometer (MaGIXS) is a sounding rocket instrument that flew on July 30, 2021 from the White Sands Missile Range, NM. The instrument was designed to address specific science questions that require differential emission measures of the solar soft X-ray spectrum from 6 – 25[Formula: see text]Å(0.5 – 2.1[Formula: see text]keV). MaGIXS comprises a Wolter-I telescope, a slit-jaw imaging system, an identical pair of grazing incidence paraboloid mirrors, a planar grating and a CCD camera. While implementing this design, some limitations were encountered in the production of the X-ray mirrors, which ended up as a catalyst for the development of a deterministic polishing approach and an improved meteorological technique that utilizes a computer-generated hologram (CGH). The opto-mechanical design approach addressed the need to have adjustable and highly repeatable interfaces to allow for the complex alignment between the optical sub-assemblies. The alignment techniques employed when mounting the mirrors and throughout instrument integration and end-to-end testing are discussed. Also presented are spatial resolution measurements of the end-to-end point-spread-function that were obtained during testing in the X-ray Cryogenic Facility (XRCF) at NASA Marshall Space Flight Center. Lastly, unresolved issues and off-nominal performance are discussed.

Publisher

World Scientific Pub Co Pte Ltd

Subject

Astronomy and Astrophysics,Instrumentation

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