Quantifying the Scientific Potential of Intermediate and Extreme Mass Ratio Inspirals with the Laser Interferometer Space Antenna
astro-ph.IM, astro-ph.GA, astro-ph.HE, gr-qc
Submitted: 2026-03-17
Updated: 2026-09-01
Comments: Code available at: https://github.com/lorenzsp/EMRI-FoM Interactive website: https://huggingface.co/spaces/lorenzsp/emri-imri-fom
DOI: 10.1103/k15y-nq5f
Code: https://github.com/lorenzsp/EMRI-FoM
License: http://creativecommons.org/publicdomain/zero/1.0/
The gist: The Laser Interferometer Space Antenna (LISA) will enable precision studies of Extreme and Intermediate Mass Ratio Inspirals (EMRIs/IMRIs), providing unique probes of astrophysical environments of
Terminology
Abstract
The Laser Interferometer Space Antenna (LISA) will enable precision studies of Extreme and Intermediate Mass Ratio Inspirals (EMRIs/IMRIs), providing unique probes of astrophysical environments of galactic nuclei and strong-field gravity. Using a fully relativistic pipeline across primary masses m 1 in [5 times10 4, 10 7],M and secondary masses m 2 in [1, 10 4],M, we map instrumental performance directly to detection horizons and parameter measurement precision. EMRIs with m 1 = 10 7,M and m 2 about 1,M are the most sensitive to instrument degradation, with redshift horizons at z about 0.01, while IMRIs are the least sensitive to degradation and reach redshifts z about 1-3. All prograde systems considered achieve sub-percent spin precision within three months of observation. The full 4.5-year mission increases the horizon of systems with m 1 = 10 7,M and m 2 about 1,M by a factor of about 4 and improves sky localization by one to two orders of magnitude reaching < 10, deg squared. IMRI detection is robust against degradation, but their parameter estimation is more vulnerable due to fewer cycles in band. With the full baseline, EMRI observations constrain scalar dipole emission and Kerr quadrupole deviations below ground-based bounds by one to two orders of magnitude. We release the accompanying software and an interactive website to enable the community to rapidly quantify the scientific potential of EMRIs and IMRIs.
Sources
- LISA Definition Study Report
- The unique potential of extreme mass-ratio inspirals for gravitational-wave astronomy
- Testing General Relativity with Low-Frequency, Space-Based Gravitational-Wave Detectors
- Extreme- and Intermediate-Mass Ratio Inspirals in Dynamical Chern-Simons Modified Gravity
- Probing scalar field with generic extreme mass-ratio inspirals around Kerr black holes
- Constraining the Deviation of Kerr Metric via Bumpy Parameterization and Particle Swarm Optimization in Extreme Mass-Ratio Inspirals
- Probing fundamental physics with Extreme Mass Ratio Inspirals: a full Bayesian inference for scalar charge
- New Horizons for Fundamental Physics with LISA
- Model independent tests of the Kerr bound with extreme mass ratio inspirals
- Prospects for Fundamental Physics with LISA
- Towards a framework for testing general relativity with extreme-mass-ratio-inspiral observations
- Using LISA EMRI sources to test off-Kerr deviations in the geometry of massive black holes
- Bumpy Black Holes in Alternate Theories of Gravity
- Constraining the spin parameter of near-extremal black holes using LISA
- Extreme mass-ratio inspirals as probes of scalar fields: inclined circular orbits around Kerr black holes
- Detecting massive scalar fields with Extreme Mass-Ratio Inspirals
- Extreme mass-ratio inspirals as probes of scalar fields: eccentric equatorial orbits around Kerr black holes
- Detecting fundamental fields with LISA observations of gravitational waves from extreme mass-ratio inspirals
- Detecting scalar fields with Extreme Mass Ratio Inspirals
- Measuring scalar charge with compact binaries: High accuracy modelling with self-force
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