Unified laboratory-frame analysis of atomic gravitational-wave sensors
arXiv:2509.24993 · doi:10.1116/5.0304468
Abstract
Atomic sensors using light-matter interactions, in particular atomic clocks and atom interferometers, have the potential to complement optical gravitational-wave detectors in the mid-frequency regime. Although both rely on interference, the interfering components of clocks are spatially colocated, whereas atom interferometers are based on spatial superpositions. Both the electromagnetic fields that drive the transitions and generate superpositions, while propagating through spacetime, as well as the atoms themselves as massive particles are influenced by gravitational waves, leading to effective potentials that induce phase differences inferred by the sensor. In this work, we analyze the effects of these potentials on atomic clocks and atom interferometers in the laboratory frame. We show that spatial superpositions in atom interferometers, both light-pulse and guided ones, give rise to a gravitational-wave signal. Although these spatial superpositions are suppressed for clocks, we show that the light pulses driving internal transitions measure the spatial distance between the centers of two separate clocks. We highlight that this mechanism only yields a sensitivity if both clocks, including possible trapping setups, move on geodesics given by the gravitational wave. While such configurations are natural for satellite free-fliers, terrestrial optical clocks usually rely on stationary traps, rendering them insensitive to leading order. Moreover, we show that both sensors can be enhanced by composite interrogation protocols in a common framework. To this end, we propose a pulse sequence that can be used for large-momentum-transfer atom interferometers and for hyper-echo atomic clocks, leading to a signal enhancement and noise suppression.
16 pages, 3 figures
References in corpus (39)
- Advanced Virgo: a 2nd generation interferometric gravitational wave detector
- Atom Interferometers
- LIGO: The Laser Interferometer Gravitational-Wave Observatory
- Matter-wave interferometry in a double well on an atom chip
- Gravitational-wave sensitivity curves
- A New Method for Gravitational Wave Detection with Atomic Sensors
- An Atomic Gravitational Wave Interferometric Sensor (AGIS)
- Matter-wave Atomic Gradiometer Interferometric Sensor (MAGIS-100)
- Gravitational Wave Detection with Atom Interferometry
- Detecting High-Frequency Gravitational Waves with Microwave Cavities
- Atom interferometry with the Sr optical clock transition
- Large Momentum Transfer Clock Atom Interferometry on the 689 nm Intercombination Line of Strontium
- Asteroids for Hz gravitational-wave detection
- Gravitational Redshift Tests with Atomic Clocks and Atom Interferometers
- Role of atoms in atomic gravitational-wave detectors
- Coherence limits in lattice atom interferometry at the one-minute scale
- Optical frequency standards for gravitational wave detection using satellite Doppler velocimetry
- Ab initio quantum theory of mass defect and time dilation in trapped-ion optical clocks
- Universality-of-clock-rates test using atom interferometry with scaling
- Super-Nyquist ultralight dark matter searches with broadband atom gradiometers
- MAGIS-100 Environmental Characterization and Noise Analysis
- Atomic diffraction from single-photon transitions in gravity and Standard-Model extensions
- Atomic interferometer based on optical tweezers
- Guided-Wave Sagnac Atom Interferometer with Large Area and Multiple Orbits
- Optimal baseline exploitation in vertical dark-matter detectors based on atom interferometry
- Tractor Atom Interferometry
- Signatures of linearized gravity in atom interferometers: A simplified computational framework
- Clock Transitions Versus Bragg Diffraction in Atom-interferometric Dark-matter Detection
- Quantum field theory for multipolar composite bosons with mass defect and relativistic corrections
- Proper Time Observables of General Gravitational Perturbations in Laser Interferometry-based Gravitational Wave Detectors
- Finite Pulse-Time Effects in Long-Baseline Quantum Clock Interferometry
- The effects of gravitational waves on a hydrogen atom
- Effects of gravitational waves on electromagnetic fields
- The Electromagnetic Field in Gravitational Wave Interferometers
- Spatial and Pulse Efficiency Constraints in Atom Interferometric Gravitational Wave Detectors
- Detecting milli-Hz gravitational waves with optical resonators
- Atomic electron transitions of hydrogen-like atoms induced by gravitational waves
- Gravitational Wave Effects on Radio Spectral Lines of Atomic Hydrogen: Hyperfine Splitting and Broadening Mechanisms
- General Relativistic Center-of-Mass Coordinates for Composite Quantum Particles