The MegaWave Radio Surveyor
astro-ph.IM, astro-ph.CO, astro-ph.EP, astro-ph.SR
Submitted: 2026-08-26
Updated: 2026-08-28
Comments: 20 pages, 8 figures; expanded NASA ASTRA concept description to provide a broader view of the science case; to be submitted to the Bulletin of the American Astronomical Society (BAAS); abstract abridged; acknowledgements updated
License: http://creativecommons.org/licenses/by-nc-sa/4.0/
The gist: Several Decadal-level questions in astrophysics, exoplanets, astrobiology, and cosmology can be addressed only at low radio frequencies inaccessible from Earth.
Terminology
Abstract
Several Decadal-level questions in astrophysics, exoplanets, astrobiology, and cosmology can be addressed only at low radio frequencies inaccessible from Earth. The MegaWave Radio Surveyor would open this largely-unexplored region of the electromagnetic spectrum with a space-based interferometer to (1) Track the space weather of other stars; (2) Detect magnetically-generated emission from exoplanets to probe their interiors and assess magnetic shielding of their atmospheres; (3) Probe the Universe's evolution during the Dark Ages via the highly-redshifted HI hyperfine line; and (4) Assess the role of cosmic rays and magnetic fields in the cosmic web. An Astrophysics Strategic Technology & Research Accelerator (ASTRA) Initiative concept, the MegaWave Radio Surveyor's science objectives respond to the Pathways to Discovery Decadal Survey and three other National Academies studies, and it would serve as a Formative Era mission in the Enduring Quests, Daring Visions roadmap. Developments in U.S. space industries enable this observatory to be realized. The MegaWave Radio Surveyor would offer a versatile, scalable, and resilient architecture capable of sensitive and simultaneous observations below 45 MHz and unprecedented angular resolution at these frequencies. The concept builds upon NASA's Sun Radio Interferometer Space Experiment (SunRISE), Star-Planet Activity Research CubeSat (SPARCS), and Lunar Surface Electromagnetics Experiment (LuSEE-Night). The MegaWave Radio Surveyor could leverage multiple elements of the Artemis program, such as access to and beyond cislunar space and communications, and there are opportunities to infuse new autonomy/AI modes for mission operations. By opening one of the last windows in the electromagnetic spectrum and pioneering space interferometry at unprecedented scales, the MegaWave Radio Surveyor would establish a transformational capability.
Sources
- LuSEE 'Night': The Lunar Surface Electromagnetics Experiment
- NOIRE Study Report: Towards a Low Frequency Radio Interferometer in Space
- Experimental evidence for coronal mass ejection suppression in strong stellar magnetic fields
- Radio Observations as an Extrasolar Planet Discovery and Characterization: Interior Structure and Habitability
- Fermi Bubbles Without AGN: Gamma-Ray Bubbles in MHD Galaxy Formation Simulations with Full Cosmic Ray Spectra
- Was the Early Universe Quantum? Falsifying Classical Stochastic Inflation
- Introduction to magnetic star-planet interactions
- CRexit observed: probing cosmic ray transport in the circumgalactic medium with absorption line spectra
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