Open Access
7 February 2023 Improved High-resolution Fast Imager
Carsten J. Denker, Meetu Verma, Aneta Wiśniewska, Robert Kamlah, Ioannis Kontogiannis, Ekaterina Dineva, Jürgen Rendtel, Svend-Marian Bauer, Mario Dionies, Hakan Önel, Manfred Woche, Christoph Kuckein, Thomas Seelemann, Partha S. Pal
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Abstract

The improved High-resolution Fast Imager (HiFI+) is a multiwavelength imaging filtergraph, which was commissioned at the GREGOR solar telescope at Observatorio del Teide, Izaña, Tenerife, Spain, in March 2022 – followed by science verification in April 2022, after which it entered routine observations. Three camera control computers with two synchronized sCMOS and CMOS cameras each provide near diffraction-limited imaging at high cadence in six wavelength bands (Ca ii H at 396.8 nm, G-band at 430.7 nm, blue continuum at 450.6 nm, narrow- and broad-band Hα at 656.3 nm, and TiO bandhead at 705.8 nm). This unique combination of photospheric and chromospheric images provides “tomographic” access to the dynamic Sun and complements spectropolarimetric observations at the GREGOR telescope. High image acquisition rates of 50 and 100 Hz facilitate image restoration, where time series of restored images have a typical cadence of 6 and 12 s, which is sufficient to resolve the dynamics of the solar photosphere and chromosphere. In principle, all imaging channels can be restored individually using the speckle masking technique or multiframe blind deconvolution (MFBD). However, images recorded strictly simultaneously in the narrow-/broad-band Hα and the G-band/blue continuum channels can be pairwise subjected to multiobject multiframe deconvolution (MOMFBD) expanding the science capabilities of HiFI+. For example, the narrow-band (FWHM = 60 nm) Halle Hα Lyot filter isolates the Hα line core, which facilitates matching chromospheric fibrils and filamentary structures to photospheric bright points. Likewise, dividing G-band by blue continuum images enhances small-scale brightenings, which are often related to small-scale magnetic fields so that their evolution can be tracked in time. A detailed description of the improved high-cadence, large-format imaging system is presented and its performance is assessed based on first-light observations.

CC BY: © The Authors. Published by SPIE under a Creative Commons Attribution 4.0 International License. Distribution or reproduction of this work in whole or in part requires full attribution of the original publication, including its DOI.
Carsten J. Denker, Meetu Verma, Aneta Wiśniewska, Robert Kamlah, Ioannis Kontogiannis, Ekaterina Dineva, Jürgen Rendtel, Svend-Marian Bauer, Mario Dionies, Hakan Önel, Manfred Woche, Christoph Kuckein, Thomas Seelemann, and Partha S. Pal "Improved High-resolution Fast Imager," Journal of Astronomical Telescopes, Instruments, and Systems 9(1), 015001 (7 February 2023). https://doi.org/10.1117/1.JATIS.9.1.015001
Received: 13 October 2022; Accepted: 12 January 2023; Published: 7 February 2023
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CITATIONS
Cited by 3 scholarly publications.
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KEYWORDS
Imaging systems

Cameras

Image restoration

Tunable filters

Computing systems

CMOS cameras

Solar telescopes

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