Bose-Einstein-condensed scalar field dark matter and the gravitational wave background from inflation: new cosmological constraints and its detectability by LIGO
Abstract
We consider an alternative cold dark matter candidate, ultralight bosons (m>10-22eV) described by a complex scalar field (SFDM) with global U(1) symmetry, with comoving particle number density conserved after particle production during standard reheating. We allow for repulsive self-interaction. In a Lambda-SFDM universe, SFDM starts relativistic, evolving from stiff (w=1) to radiation-like (w=1/3), becoming nonrelativistic (w=0) at late times. Thus, a stiff-SFDM-dominated era precedes the familiar radiation-dominated era. SFDM particle mass m and quartic self-interaction strength λ, are therefore constrained by cosmological observables, Neff, the effective number of neutrino species during BBN, and zeq, the matter-radiation equality redshift. Since the stochastic gravitational wave background (SGWB) from inflation is amplified during the stiff-SFDM-dominated era, it can also contribute a radiationlike component large enough to affect these observables. Remarkably, this amplification makes this SGWB detectable by current GW experiments, e.g., aLIGO/Virgo and LISA, for Lambda-SFDM models satisfying cosmological constraints, for a range of reheat temperatures Tre and currently allowed values of tensor-to-scalar ratio r. For given r and λ/(mc2)2, the marginally-allowed Lambda-SFDM model for each Tre has the smallest m that satisfies cosmological constraints. For example, for marginally-allowed models with r=0.01 and λ/(mc2)2=10-18eV-1cm3, null detection by the aLIGO O1 run excludes 8.75*103<Tre (GeV)<1.7*105 at 95% confidence, demonstrating that GW experiments already place a new kind of cosmological constraint on SFDM. A wider parameter range should be accessible to aLIGO/Virgo O5, with potential to detect this signature of Lambda-SFDM. For this same illustrative family, 3-sigma detection is predicted for 600<Tre (GeV)<107.
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