TDCOSMO 2025: Cosmological constraints from strong lensing time delays
(2025)
Project Dinos II: redshift evolution of dark and luminous matter density profiles in strong-lensing elliptical galaxies across 0.1 < z < 0.9
Monthly Notices of the Royal Astronomical Society 91探花 University Press 541:1 (2025) 1-27
Abstract:
We present a new measurement of the dark and luminous matter distribution of massive elliptical galaxies, and their evolution with redshift, by combining strong lensing and dynamical observables. Our sample of 56 lens galaxies covers a redshift range of . By combining new Hubble Space Telescope imaging with previously observed velocity dispersion and line-of-sight measurements, we decompose the luminous matter profile from the dark matter profile and perform a Bayesian hierarchical analysis to constrain the population-level properties of both profiles. We find that the inner slope of the dark matter density profile (鈥榗usp鈥; ) is consistent ( with intrinsic scatter) with a standard Navarro鈥揊renk鈥揥hite (NFW; ) at . Additionally, we find an appreciable evolution with redshift () resulting in a shallower slope (of tension from NFW) at redshifts . This is in excellent agreement with previous population-level observational studies, as well as with predictions from hydrodynamical simulations such as IllustrisTNG. We also find the stellar mass-to-light ratio at the population level is consistent with that of a Salpeter initial mass function, a small stellar mass-to-light gradient [, with ], and isotropic stellar orbits. Our averaged total mass density profile is consistent with a power-law profile within 0.25 to 4 Einstein radii (), with an internal mass-sheet transformation parameter consistent with no mass sheet. Our findings confirm the validity of the standard mass models used for time-delay cosmography.Supermassive black hole mass measurement in the spiral galaxy NGC 4736 using JWST/NIRSpec stellar kinematics
Astronomy & Astrophysics EDP Sciences 698 (2025) L9-L9
Abstract:
<jats:p>We present accurate mass measurements of the central supermassive black hole (SMBH) in NGC 4736 (M 94). We used the 鈥済old-standard鈥 stellar absorption features (CO band heads) at 鈭2.3 渭m, as opposed to gas emission lines, to trace the dynamics in the nuclear region, easily resolving the SMBH鈥檚 sphere of influence. The analysis uses observations made with the integral field unit of the Near-Infrared Spectrograph (NIRSpec) on the <jats:italic>James Webb</jats:italic> Space Telescope and a surface brightness profile derived from <jats:italic>Hubble</jats:italic> Space Telescope archival images. We used Jeans anisotropic models within a Bayesian framework, and comprehensive Markov chain Monte Carlo optimization, to determine the best-fit black hole mass, orbital anisotropy, mass-to-light ratio, and nucleus kinematical inclination. We obtained a SMBH mass <jats:italic>M</jats:italic><jats:sub>BH</jats:sub>鈥=鈥(1.60鈥吢扁0.16)脳10<jats:sup>7</jats:sup> M<jats:sub>鈯</jats:sub> (1<jats:italic>蟽</jats:italic> random error), which is consistent with the <jats:italic>M</jats:italic><jats:sub>BH</jats:sub>鈥<jats:italic>蟽</jats:italic> and <jats:italic>M</jats:italic><jats:sub>BH</jats:sub>鈥<jats:italic>M</jats:italic><jats:sub>鈰</jats:sub> relations. This is the first dynamical measurement of a <jats:italic>M</jats:italic><jats:sub>BH</jats:sub> in NGC 4736 based on the stellar kinematics observed with NIRSpec. We thus settle a longstanding inconsistency between estimates based on nuclear emission-line tracers and the <jats:italic>M</jats:italic><jats:sub>BH</jats:sub>鈥<jats:italic>蟽</jats:italic> relation. Our analysis shows that NIRSpec can detect SMBHs with <jats:italic>M</jats:italic><jats:sub>BH,鈥唌in</jats:sub>鈥勨増鈥5鈥吤椻10<jats:sup>6</jats:sup> M<jats:sub>鈯</jats:sub> in galaxies within 5 Mpc and <jats:italic>蟽</jats:italic>鈥勨増鈥100 km s<jats:sup>鈭1</jats:sup>.</jats:p>Project Dinos II: Redshift evolution of dark and luminous matter density profiles in strong-lensing elliptical galaxies across $0.1 < z < 0.9$
(2025)
High Optical-to-X-Ray Polarization Ratio Reveals Compton Scattering in BL Lacertae鈥檚 Jet
The Astrophysical Journal Letters American Astronomical Society 985:1 (2025) l15