Solar System-scale interferometry on fast radio bursts could measure cosmic distances with sub-percent precision
arXiv:2210.07159 · doi:10.3847/2041-8213/acc947
Abstract
The light from a source at a distance d will arrive at detectors separated by 100 AU at times that differ by as much as 120 (d/100 Mpc)^{-1} nanoseconds because of the curvature of the wavefront. At gigahertz frequencies, the arrival time difference can be determined to better than a nanosecond with interferometry. If the space-time positions of the detectors are known to a few centimeters, comparable to the accuracy to which very long baseline interferometry baselines and global navigation satellite systems (GNSS) geolocations are constrained, nanosecond timing would allow competitive cosmological constraints. We show that a four-detector constellation at Solar radii of >10 AU could measure distances to individual sources with sub-percent precision and, hence, cosmological parameters such as the Hubble constant to this precision. The precision increases quadratically with baseline length. FRBs are the only known bright extragalactic radio source that are sufficiently point-like. Galactic scattering limits the timing precision at <3 GHz, whereas at higher frequencies the precision is set by removing dispersion. Furthermore, for baselines greater than 100 AU, Shapiro time delays limit the precision, but their effect can be cleaned with two additional detectors. Accelerations that result in ~1 cm uncertainty in detector positions (from variations in the Sun's irradiance, dust collisions and gaseous drag) could be corrected for with weekly GNSS-like trilaterations. Gravitational accelerations from asteroids occur over longer timescales, and so a setup with a precise accelerometer and calibrating the detector positions off of distant FRBs may also be sufficient. The proposed interferometer would also resolve the radio emission region of Galactic pulsars, constrain the mass distribution in the outer Solar System, and reach interesting sensitivities to ~0.01-100 micro-Hz gravitational waves.
34 pages in preprint format; 3 figures; accepted to ApJ Letters
References in corpus (33)
- Array Programming with NumPy
- First M87 Event Horizon Telescope Results. I. The Shadow of the Supermassive Black Hole
- A Comprehensive Measurement of the Local Value of the Hubble Constant with 1 km/s/Mpc Uncertainty from the Hubble Space Telescope and the SH0ES Team
- Gaia Data Release 1. Summary of the astrometric, photometric, and survey properties
- In the Realm of the Hubble tension a Review of Solutions
- Large Magellanic Cloud Cepheid Standards Provide a 1% Foundation for the Determination of the Hubble Constant and Stronger Evidence for Physics Beyond LambdaCDM
- A bright millisecond radio burst of extragalactic origin
- The Host Galaxy and Redshift of the Repeating Fast Radio Burst FRB 121102
- A census of baryons in the Universe from localized fast radio bursts
- Fast Radio Bursts
- The First CHIME/FRB Fast Radio Burst Catalog
- Advection-Dominated Accretion and the Black Hole Event Horizon
- Fast radio bursts as synchrotron maser emission from decelerating relativistic blast waves
- A repeating fast radio burst source localised to a nearby spiral galaxy
- A single fast radio burst localized to a massive galaxy at cosmological distance
- The Repeating Fast Radio Burst FRB 121102 as Seen on Milliarcsecond Angular Scales
- A repeating fast radio burst source in a globular cluster
- RadioAstron -- a Telescope with a Size of 300 000 km: Main Parameters and First Observational Results
- Nine New Repeating Fast Radio Burst Sources from CHIME/FRB
- The Planet Nine Hypothesis
- The Pantheon+ Analysis: Evaluating Peculiar Velocity Corrections in Cosmological Analyses with Nearby Type Ia Supernovae
- A Local Universe Host for the Repeating Fast Radio Burst FRB 20181030A
- Asteroids for Hz gravitational-wave detection
- Folded Fields as the Source of Extreme Radio-Wave Scattering in the Galactic Center
- Exploring the epoch of hydrogen reionization using FRBs
- A population analysis of pulse broadening in ASKAP Fast Radio Bursts
- The Thousand-Pulsar-Array programme on MeerKAT -- V. Scattering analysis of single-component pulsars
- Scintillation timescale measurement of the highly active FRB20201124A
- What it Takes to Measure Reionization with Fast Radio Bursts
- Gravity Gradient Noise from Asteroids
- Multi-frequency scatter broadening evolution of pulsars - II. Scatter broadening of nearby pulsars
- Using Gravitational Wave Parallax to Measure the Hubble Parameter with Pulsar Timing Arrays
- Measuring the Hubble Constant with Double Gravitational Wave Sources in Pulsar Timing