A Multioctave 8 GHz-40 GHz Receiver for Radio Astronomy
Creators
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Kooi, Jacob W.1
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Soriano, Melissa1
- Bowen, James1
- Abdulla, Zubair1
- Samoska, Lorene1
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Fung, Andy K.1
- Manthena, Raju1
- Hoppe, Daniel1
- Javadi, Hamid1
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Crawford, Timothy1
- Hayton, Darren J.2
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Malo-Gómez, Inmaculada3
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Gallego-Puyol, Juan Daniel3
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Akgiray, Ahmed4
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Gabritchidze, Bekari5
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Cleary, Kieran A.5
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Jacobs, Christopher1
- Lazio, Joseph1
Abstract
Accurate measurement of angular positions on the sky requires a well-defined system of reference, something that in practice is realized by the International Celestial Reference Frame (ICRF) with observations of distant (typical redshift ∼1) Active Galactic Nuclei (AGN). At such great distances a subset of these objects exhibit as little as 10−50 μas/year observed parallax or proper motion, thus giving the frame excellent spatial and temporal stability. Until fairly recently the majority of AGN centered imaging was accomplished in the S (2.3 GHz) and X (8.4 GHz) radio frequency bands, however S-band observations for reasons such as sensitivity “plateauing”, increased source structure (jets), and radio frequency interference (RFI) have become less productive. Following spacecraft telemetry moves to higher frequencies and a desire to strengthen JPL's leadership in defining the next-generation of celestial reference frames has motivated the development of a “Quad-band” prototype receiver that operates in X, Ku, K, and Ka band in both right hand (RCP) and left hand (LCP) circular polarization. The goal of this receiver is to achieve less than a 20 % increase in noise over the Jansky Very Large Array (JVLA, NRAO) performance specification, which in such a wide bandwidth represents a revolutionary capability. To evaluate the various technical developments of the 8 GHz−40 GHz receiver the feedhorn optical beam was designed to interface to the US based Very Long Baseline Array (VLBA). The receiver's intermediate frequency (IF) spans 4 GHz−8 GHz, giving rise to up to eight 4 GHz IF channels for a fully populated instrument. This paper outlines the technical development of a 2 1/2 octave wide (8 GHz−40 GHz) X-Ka band prototype receiver, fulfilling a need for super broadband technology within the VLBI network. An important additional benefit of the wideband receiver approach is its simplicity and low cost of operation.
Copyright and License
This work is licensed under a Creative Commons Attribution 4.0 License. For more information, see https://creativecommons.org/licenses/by/4.0/.
Acknowledgement
The authors gratefully acknowledge the National Radio Astronomy Observatory for facilitating access to the Owens Valley (OV) VLBA antenna for test observations, Dr. Jay Blanchard for managing the OV VLBA Project on NRAO's side, William Martin of NRAO for advice and mechanical calculation support, and Jim Brown for all his assistance and enthusiasm installing the 8 GHz−40 GHz receiver at the Owens Valley VLBA Antenna. We also thank Dr. Walter Brisken of NRAO for his very helpful support and advice and finally Stephen Montanez of JPL for the careful assembly of the LNA blocks. The research described herein was carried out at the Jet Propulsion Laboratory, California Institute of Technology, USA, under contract with the National Aeronautics and Space Administration National Aeronautics and Space Administration. Copyright 2022. All rights reserved.
Funding
This work was supported by the Jet Propulsion Laboratory, California Institute of Technology, through contract with the National Aeronautics and Space Administration.
Files
A_Multioctave_8_GHz-40_GHz_Receiver_for_Radio_Astronomy.pdf
Additional details
Funding
- Jet Propulsion Laboratory
- California Institute of Technology
- National Aeronautics and Space Administration
Dates
- Accepted
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2023-01-11
- Available
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2023-02-17Published online
Caltech Custom Metadata
- Caltech groups
- Owens Valley Radio Observatory , Division of Physics, Mathematics and Astronomy (PMA)
- Publication Status
- Published