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We propose an upgrade to Advanced LIGO (aLIGO), named LIGO-LF, that focuses on improving the sensitivity in the 5-30 Hz low-frequency band, and we explore the upgrade's astrophysical applications. We present a comprehensive study of the detector's technical noises and show that with technologies currently under development, such as interferometrically sensed seismometers and balanced-homodyne readout, LIGO-LF can reach the fundamental limits set by quantum and thermal noises down to 5 Hz. These technologies are also directly applicable to the future generation of detectors. We go on to consider this upgrade's implications for the astrophysical output of an aLIGO-like detector. A single LIGO-LF can detect mergers of stellar-mass black holes (BHs) out to a redshift of z≃6 and would be sensitive to intermediate-mass black holes up to 2000 M_{⊙}. The detection rate of merging BHs will increase by a factor of 18 compared to aLIGO. Additionally, for a given source the chirp mass and total mass can be constrained 2 times better than aLIGO and the effective spin 3-5 times better than aLIGO. Furthermore, LIGO-LF enables the localization of coalescing binary neutron stars with an uncertainty solid angle 10 times smaller than that of aLIGO at 30 Hz and 4 times smaller when the entire signal is used. LIGO-LF also significantly enhances the probability of detecting other astrophysical phenomena including the tidal excitation of neutron star r modes and the gravitational memory effects.
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http://dx.doi.org/10.1103/PhysRevLett.120.141102 | DOI Listing |
Mult Scler
September 2025
Neuroimaging Unit, Neuroimmunology Division, Department of Neurology, Vanderbilt University Medical Center, Nashville, TN, USA.
Background: The selective inversion recovery quantitative magnetization transfer imaging-derived macromolecular-to-free pool size ratio (PSR) and the magnetization transfer imaging-derived magnetization transfer ratio (MTR) are both indirect indicators of myelin integrity. However, it remains unknown whether the two measures perform equally in clinical studies.
Objectives: To compare the accuracy and effect size (ES) of PSR and MTR in assessing white matter (WM) injury in the brain of people with multiple sclerosis (PwMS).
Entropy (Basel)
August 2025
College of Physics & Electronic Engineering, Xianyang Normal University, Xianyang 712000, China.
The key to resolving the black hole information loss paradox lies in clarifying the origin of black hole entropy and the mechanism by which black holes store information. By applying thermodynamic principles, we demonstrate that the entropy of a gravitational field is negative and proportional to the strength of the field, indicating that gravitational fields possess information storage capacity. For Schwarzschild black holes, we further demonstrate that information conventionally attributed to the black hole's interior is in fact encoded within its external gravitational field.
View Article and Find Full Text PDFEntropy (Basel)
August 2025
Independent Researcher, Ringhouse-180 E 1. Jefferson Road, Rockville, MD 20847, USA.
We describe some properties of the hyperbolically symmetric black hole (hereafter referred to as the HSBH) proposed a few years ago. We start by explaining the main motivation behind such an idea, and we determine the main differences between this scenario and the classical black hole (hereafter referred to as the CBH) scenario. Particularly important are the facts that, in the HSBH scenario, (i) test particles in the region inside the horizon experience a repulsive force that prevents them from reaching the center, (ii) test particles may cross the horizon outward only along the symmetry axis, and (iii) the spacetime within the horizon is static but not spherically symmetric.
View Article and Find Full Text PDFVast arrays of radio antennas could trace neutrinos back to supernovae and black holes.
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