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, ?scar 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 ? 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).

The NIRISS PASSAGE Spectroscopic Redshift Catalog in COSMOS

The Astrophysical Journal Supplement Series American Astronomical Society 284:2 (2026) 64

Authors:

Mason S Huberty, Kalina V Nedkova, Zahra Sattari, Vihang Mehta, Claudia Scarlata, Marc Rafelski, Matthew J Hayes, Peter J Watson, Ayan Acharyya, Jacob Levine, Benedetta Vulcani, Alexandra Le Reste, Farhanul Hasan, James Colbert, Michele Trenti, Xin Wang, Axel Runnholm, Matthew A Malkan, Andrew J Bunker, Anahita Alavi, Hakim Atek, Andrew J Battisti, Y Sophia Dai, Keunho Kim, Alaina Henry, Michael J Rutkowski, Hollis Akins, Caitlin M Casey, Maximilien Franco, Santosh Harish, Jeyhan S Kartaltepe, Anton Koekemoer, Daizhong Liu, Henry McCracken, Jason Rhodes, Brant Robertson, Marko Shuntov

Abstract:

We present the Parallel Application of Slitless Spectroscopy to Analyze Galaxy Evolution (PASSAGE) spectroscopic redshift catalog in the COSMOS field. PASSAGE is a JWST Cycle 1 Near Infrared Imager and Slitless Spectrograph (or NIRISS) wide-field slitless spectroscopy pure-parallel survey, obtaining near-infrared spectra of thousands of extragalactic sources. Fifteen out of 63 PASSAGE fields fall within the Hubble Space Telescope COSMOS footprint, of which 11 overlap with COSMOS-Web, a JWST treasury survey providing additional space-based photometry. We present our custom line-finding algorithm and visual inspection effort used to identify emission lines and derive the spectroscopic redshifts for line-emitting sources in PASSAGE. The line-finding algorithm identifies between ~200 and 950 line-emitting candidates per field, of which typically 47% were identified as true emission lines post visual inspection. We identify 2183 emission-line sources at 0.08 ? z ? 4.7, 1896 of which have available COSMOS photometric redshifts. We find excellent redshift agreement between the COSMOS photometric redshifts and the PASSAGE spectroscopic redshifts for strong (signal-to-noise ratio > 5), multi-line-emitting sources. This agreement weakens for PASSAGE single-line emitters with ambiguous identities. These single-line emitters are likely misidentified around 18% of the time based on comparisons to photometric redshifts. We derive stellar masses using PASSAGE photometry and spectroscopic redshifts, in broad agreement with existing COSMOS-Web stellar masses, but with some discrepancy driven by redshift disagreements. We publicly release this spectroscopic redshift catalog, which will enable community-led science in prime extragalactic fields and serve as a crucial dataset for validating Euclid and Roman spectroscopy.

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 Tr?ster, Athithya Aravinthan, Marika Asgari, Deaglan J Bartlett, Maciej Bilicki, Dominik Els?sser, Catherine Heymans, Benjamin Joachimi, Lauro Moscardini, Dennis Neumann, Anya Paopiamsap, Robert Reischke, Benjamin St?lzner, 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 ? 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.

Probing the environments of FRI and FRII radio galaxies in LoTSS DR2 with galaxy clusters

Astronomy & Astrophysics EDP Sciences 710 (2026) A326-A326

Authors:

Tong Pan, Yuming Fu, HJA Rottgering, JMGHJ de Jong, MJ Hardcastle, B Mingo, L Clews, M Magliocchetti, JW Petley, Bohan Yue

Abstract:

Aims. The origin of the morphological dichotomy between Fanaroff-Riley Class I (FRI) and Class II (FRII) radio galaxies has long been debated. In this study, we investigate whether the cluster-scale environment plays a significant role in shaping the morphology of FRIs and FRIIs. Methods. Using the new morphologically classified catalogue from the second data release of the LOFAR Two-metre Sky Survey (LoTSS DR2), we construct two samples at z ?<?0.4: a volume-limited sample with L 144 > 4 × 10 24 W?Hz ?1 and a paired sample in which each FRII is matched to the nearest FRI in luminosity and redshift. We cross-match these samples with a recent galaxy cluster catalogue based on the DESI Legacy Imaging Survey. A galaxy is considered associated with a cluster with M 500 ?&驳迟;?0.47?×?10 14 ? M if the redshift difference between the galaxy and the cluster centre is below 0.01, and the projected distance between the two is smaller than 2 R 500 . Results. In the volume-limited sample, 48.6 ?1.8 +1.8 % of FRIs and 30.6 ?2.3 +2.5 % of FRIIs are associated with clusters. In the paired sample, 45.6 ?3.1 +3.1 % of FRIs and 32.6 ?2.8 +3.0 % of FRIIs are associated with clusters. This difference in cluster match fractions between FRIs and FRIIs in both samples becomes more pronounced at higher radio luminosities ( L 144?MHz > 10 26 W Hz ?1 ). In the volume-limited sample, 55.6 ?9.6 +9.2 % of luminous FRIs and 19.0 ?4.6 +5.7 % of luminous FRIIs are associated with clusters. In the paired sample, 50.0 ?12.9 +12.9 % of luminous FRIs and 6.7 ?3.9 +9.5 % of luminous FRIIs are associated with clusters. Nevertheless, those FRIs and FRIIs that are associated with clusters show similar properties. In particular, the distributions of radio luminosity and stellar mass as functions of cluster richness and M 500 are similar for FRIs and FRIIs. The radial density profiles of cluster-associated FRIs and FRIIs both peak at 0.5 × R 500 and decline beyond R 500 , showing very similar spatial distributions within clusters. Furthermore, in the volume-limited sample, 74.8 ?2.3 +2.2 % of cluster-associated FRIs and 61.9 ?4.6 +4.4 % of cluster-associated FRIIs are identified as brightest cluster galaxies (BCGs). In the paired sample, 78.1 ?4.0 +3.5 % of cluster-associated FRIs and 65.9 ?5.3 +4.9 % of cluster-associated FRIIs are identified as BCGs. The median properties of these FRI-BCGs and FRII-BCGs, as well as those of their host clusters, do not show significant differences. Conclusions. Compared to FRIs, FRIIs are less frequently found in galaxy clusters, particularly at high radio luminosities. This pattern may be explained by the jet disruption scenario, in which the dense gas in galaxy clusters can slow down or disturb radio jets, making it more difficult for powerful FRII structures to form or remain stable. However, when FRIs and FRIIs do reside in clusters, they appear to inhabit similar environments in terms of richness, mass, and radial position. These findings suggest that, while the cluster-scale environment may influence the cluster match fraction, the morphological distinction between FRIs and FRIIs is unlikely to be primarily driven by cluster-scale properties alone. Improved estimates of cluster richness and mass will help to further clarify the extent to which the cluster environment influences the radio morphology of FRIs and FRIIs.

Transformer-based source detection and morphological classification in LOFAR Deep-Field continuum images

Monthly Notices of the Royal Astronomical Society Oxford University Press 549:3 (2026) stag1013

Authors:

Guangwen Chen, Kristian Z Adami, John Abela, Caijuan Yue, Weibin Sun, Fujia Li, Zhaoting Chen, Daniel Magro, Yogesh Wadadekar, Leah K Morabito

Abstract:

Radio source detection and morphological classification are fundamental for exploiting the scientific potential of modern radio continuum surveys. However, the rapidly increasing data volumes and the wide diversity of radio morphologies make traditional visual inspection infeasible and pose significant challenges for automated source finding. We apply a transformer-based set-prediction detector (RF-DETR) to 150 MHz continuum images from the LOFAR Deep Fields for instance-level source detection and morphological classification. The method is adapted to multi-frequency-synthesis images of interferometric data and trained with a morphology-driven scheme using five mutually exclusive classes. The model is trained on the ELAIS-N1 Deep Field, where it achieves high detection and classification performance ( per cent), and is then applied without retraining to the other three LOFAR Deep Fields. Across all four fields, the model yields consistent catalogues with modest field-to-field differences arising from survey depth and calibration. Compared with widely used PyBDSF catalogues, RF-DETR recovers the majority of PyBDSF sources while representing classical multi-component radio galaxies as single source-level detections rather than fragmented Gaussian components. Artefact-affected and spurious detections are identified as explicit classes, allowing these detections to be distinguished from general astrophysical sources in the resulting catalogues. As external validation, RF-DETR recovers the majority of visually identified extended and giant radio galaxies in the LOFAR Deep Fields and assigns them predominantly to extended morphological classes. These results indicate that transformer-based detectors provide a practical, scalable, morphology-aware approach to source finding in deep radio surveys, with clear relevance for forthcoming facilities such as SKA-Low.