Learning the Universe: The Structure of Dust Attenuation Curves in Galaxy Simulations

ArXiv 2606.10027 (2026)

Authors:

Laura Sommovigo, Deaglan J Bartlett, Rachel K Cochrane, Matthew Ho, Christopher C Lovell, Rachel S Somerville

CMBolic: Symbolic emulators for the Cosmic Microwave Background. I. Lensing

(2026)

Authors:

David MJ Vokrouhlicky, Constantinos Skordis, Deaglan J Bartlett, Harry Desmond, Pedro G Ferreira

The Thermal and Kinematic Sunyaev–Zeldovich Effect in Galaxy Clusters and Filaments Using Multifrequency Temperature Maps of the Cosmic Microwave Background: A399–A401 Cluster Pair Case Study

The Astrophysical Journal American Astronomical Society 1004:1 (2026) 81-81

Authors:

AS Gill, Y Guan, AD Hincks, T Mroczkowski, Z Atkins, E Barbavara, ES Battistelli, JR Bond, W Coulton, AJ Duivenvoorden, M Hilton, JP Hughes, G Isopi, J van Marrewijk, K Moodley, S Naess, B Partridge, B Ried Guachalla, J Orlowski-Scherer, C Sifón, EM Vavagiakis, EJ Wollack

Abstract:

We present a multifrequency and multi-instrument methodology to study the physical properties of galaxy clusters and cosmic filaments using cosmic microwave background observations. Our approach enables simultaneous measurement of both the thermal (tSZ) and kinematic Sunyaev–Zeldovich (kSZ) effects, incorporates relativistic corrections, and models astrophysical foregrounds such as thermal dust emission. We do this by jointly fitting a single physical model across multiple maps from multiple instruments at different frequencies, rather than fitting a model to a single Compton-y map. We demonstrate the success of this method by fitting the A399–A401 galaxy cluster pair and filament system using archival data from the Planck satellite and new, targeted deep data from the Atacama Cosmology Telescope, covering 11 different frequencies over 14 maps from 30 GHz to 545 GHz. Our tSZ results are consistent with previous work using Compton-y maps. We measure the line-of-sight peculiar velocities of the cluster–filament system using the kSZ effect and find statistical uncertainties on individual cluster peculiar velocities of ≲600 km s−1, which are competitive with current state-of-the-art measurements. Additionally, we measure the optical depth of the filament component with a signal-to-noise of 8.5σ and reveal hints of its morphology. This modular approach is well-suited for application to future instruments across a wide range of millimeter and submillimeter wavebands.

HETDEX Public Data Release 1: Source Catalog 2 and Data Cubes from ∼90 deg2 of Integral-field Optical Spectroscopy

The Astrophysical Journal Supplement Series American Astronomical Society 284:2 (2026) 67

Authors:

Erin Mentuch Cooper, Karl Gebhardt, Dustin Davis, Chenxu 辰旭 Liu 刘, Barbara G Castanheira, Owen Chase, Óscar A Chávez Ortiz, Robin Ciardullo, Olivia Curtis, Delaney A Dunne, Neal J Evans, Daniel J Farrow, Maximilian Fabricius, Steven L Finkelstein, Caryl Gronwall, Nathaniel J Hamme, Gary J Hill, Lindsay R House, Matt J Jarvis, Donghui Jeong, Andreas Kelz, Eiichiro Komatsu, Mahan Mirza Khanlari, Hasti Khoraminezhad, Wolfram Kollatschny, Maja Lujan Niemeyer, Hanshin Lee, Phillip MacQueen, Deeshani Mitra, Shiro Mukae, Masami Ouchi, Jennifer Poppe, Meredith C Powell, Mahdi Qezlou, Shun Saito, Donald P Schneider, Laurel Weiss, Lutz Wisotzki, Gregory R Zeimann

Abstract:

The Hobby–Eberly Telescope Dark Energy Experiment (HETDEX) is a wide-field, integral-field spectroscopic survey designed to map the large-scale distribution of Lyα-emitting galaxies (LAEs) at 1.88 < z < 3.52 and constrain dark energy at cosmic noon. Using the 10 m Hobby–Eberly Telescope and the Visible Integral-Field Replicable Unit (IFU) Spectrograph, HETDEX obtains >35,000 spectra per exposure over 3500–5500 Å at R ∼ 800 with ∼1.″8 image quality, enabling an untargeted census of emission-line galaxies across 540 deg2. We present HETDEX Public Data Release 1 (PDR1), comprising 431,713 IFU observations covering 86.67 deg2 of noncontiguous sky in the Spring (13h, +51°) and Fall (1 .h 5, 0°) fields, along with legacy regions (Cosmic Evolution Survey, Great Observations Origins Deep Survey North, North Ecliptic Pole, SA22). PDR1 includes the HETDEX Public Source Catalog 2 (HPSC2), an expanded and reprocessed version of E. Mentuch Cooper et al. (2023) incorporating four additional years of data, improved quality control, and new machine learning classifiers. HPSC2 contains 426,654 LAEs, 491,411 [O II] emitters, 19,457 low-z galaxies, 18,303 active galactic nuclei, and 150,608 stars, providing coordinates, redshifts or stellar velocities, and 1D spectra for each source. Because the data cubes use local sky subtraction optimized for faint emission-line detection, they are not suited for absolute surface-brightness measurements or very extended nearby galaxies. Appendix materials include the full detection catalog, the 1.6 million–candidate LAE sample, and raw detection databases. All products are publicly accessible through the HETDEX data portal (https://hetdex.org/data-results/), including access to a public JupyterLab. HPSC2 is also publicly available via Zenodo (doi:10.5281/zenodo.19581262).

KiDS-Legacy: WIMP dark matter constraints from the cross-correlation of weak lensing and Fermi-LAT gamma rays

Astronomy & Astrophysics EDP Sciences 710 (2026) a80

Authors:

Shiyang Zhang, Hendrik Hildebrandt, Ziang Yan, Tilman Tröster, Athithya Aravinthan, Marika Asgari, Deaglan J Bartlett, Maciej Bilicki, Dominik Elsässer, Catherine Heymans, Benjamin Joachimi, Lauro Moscardini, Dennis Neumann, Anya Paopiamsap, Robert Reischke, Benjamin Stölzner, Angus H Wright

Abstract:

Dark matter dominates the matter content of the Universe, and its properties can be constrained through large-scale structure probes such as the cross-correlation between the unresolved gamma-ray background (UGRB) and weak gravitational lensing. We analysed 15 years of Fermi–LAT data, constructing UGRB intensity maps in ten energy bins (0.5–1000 GeV), and cross-correlated them with KiDS-Legacy shear in six tomographic bins. The measurements were performed using angular power spectra estimated with the pseudo- C ℓ method. No significant cross-correlation was found. Based on this non-detection, we present 95% upper bounds on the weakly interacting massive particle decay rate Γ dec and velocity-averaged annihilation cross-section ⟨ σ ann v ⟩ as functions of mass. We compared our results with bounds from other cosmological tracers and from local probes, and we found them to be complementary, particularly at low masses (GeV/TeV). In addition, using a Euclid -like lensing survey cross-correlated with Fermi–LAT, we forecast approximately two to four times tighter limits, highlighting the potential of forthcoming data to strengthen constraints on dark matter annihilation and decay.