pith. sign in

Gravitational Wave Detection with Atom Interferometry

1 Pith paper cite this work. Polarity classification is still indexing.

1 Pith paper citing it
abstract

We propose two distinct atom interferometer gravitational wave detectors, one terrestrial and another satellite-based, utilizing the core technology of the Stanford $10 \text{m}$ atom interferometer presently under construction. The terrestrial experiment can operate with strain sensitivity $ \sim \frac{10^{-19}}{\sqrt{\text{Hz}}}$ in the 1 Hz - 10 Hz band, inaccessible to LIGO, and can detect gravitational waves from solar mass binaries out to megaparsec distances. The satellite experiment probes the same frequency spectrum as LISA with better strain sensitivity $ \sim \frac{10^{-20}}{\sqrt{\text{Hz}}}$. Each configuration compares two widely separated atom interferometers run using common lasers. The effect of the gravitational waves on the propagating laser field produces the main effect in this configuration and enables a large enhancement in the gravitational wave signal while significantly suppressing many backgrounds. The use of ballistic atoms (instead of mirrors) as inertial test masses improves systematics coming from vibrations and acceleration noise, and reduces spacecraft control requirements.

fields

hep-th 1

years

2024 1

verdicts

UNVERDICTED 1

representative citing papers

Response of interferometers to the vacuum of quantum gravity

hep-th · 2024-09-05 · unverdicted · novelty 5.0

Standard low-energy quantum gravity via effective graviton QFT predicts interferometer length variations of order the Planck length (~10^{-35} m), with no divergences indicating breakdown.

citing papers explorer

Showing 1 of 1 citing paper.

  • Response of interferometers to the vacuum of quantum gravity hep-th · 2024-09-05 · unverdicted · none · ref 24 · internal anchor

    Standard low-energy quantum gravity via effective graviton QFT predicts interferometer length variations of order the Planck length (~10^{-35} m), with no divergences indicating breakdown.