arXiv · 2605.17589
Impact of the axion-like self-interactions in gravitational atoms for LISA
Abstract
Ultralight bosons with self-interactions, such as axion-like particles, can form astrophysical Bose--Einstein condensates around stars or compact objects, often referred to as gravitational atoms. In this work, we adopt a recently proposed dynamical formation mechanism for these halos and estimate their impact on extreme- and intermediate-mass-ratio inspirals when present around the primary black hole. We show that, for signal-to-noise ratios $\lesssim 100$, LISA can distinguish gravitational waveforms from binaries embedded in such halo overdensities. Our analysis indicates that LISA can probe boson masses $m_\mathrm{dm}\sim10^{-17}$--$10^{-15}\,\mathrm{eV}$ and decay constants $f_a\sim3 \times 10^{10}$--$6 \times 10^{12}\,\mathrm{GeV}$ using binaries with total masses $M\sim10^4$--$10^5\,M_\odot$, assuming conservative DM densities consistent with the central values of Navarro--Frenk--White profiles. Allowing for higher background densities and different extreme-mass-ratio configurations further extends the accessible parameter space. Moreover, we find that for a binary configuration with $M\sim10^4M_{\odot}$, $\rho_{\rm dm} = 10^4\,\mathrm{GeV/cm^3}$, and signal to noise ratio $\text{SNR} \sim 20$, a particle mass of $m_{dm} = 3.2 \cdot 10^{-15}$ eV and decay constant of $f_a = 1.6 \cdot 10^{11}$ GeV maximize the dephasing due to dynamical friction, enabling the recovery of the particle parameters at the percent level. These results demonstrate that LISA can place constraints on axion-like particle masses and self-interactions without requiring additional couplings to Standard Model fields.
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Samuel Gómez Gómez, Xisco Jimenez Forteza, Carlos Palenzuela Luque. 2026-05-17. Impact of the axion-like self-interactions in gravitational atoms for LISA. https://arxiv.org/abs/2605.17589
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