TY - JOUR
T1 - Quasars acting as Strong Lenses Found in DESI DR1
AU - DESI Collaboration
AU - McArthur, Everett
AU - Millon, Martin
AU - Powell, Meredith
AU - Wechsler, Risa H.
AU - Pan, Zhiwei
AU - Siudek, Małgorzata
AU - Spiller, Jonas
AU - Aguilar, Jessica Nicole
AU - Ahlen, Steven
AU - Anand, Abhijeet
AU - BenZvi, Segev
AU - Bianchi, Davide
AU - Brooks, David
AU - Claybaugh, Todd
AU - Cuceu, Andrei
AU - Macorra, Axel de la
AU - Dey, Arjun
AU - Doel, Peter
AU - Font-Ribera, Andreu
AU - Forero-Romero, Jaime E.
AU - Gaztañaga, Enrique
AU - Gontcho, Satya Gontcho A
AU - Gutierrez, Gaston
AU - Herrera-Alcantar, Hiram K.
AU - Honscheid, Klaus
AU - Ishak, Mustapha
AU - Joyce, Dick
AU - Juneau, Stephanie
AU - Kirkby, David
AU - Kisner, Theodore
AU - Kremin, Anthony
AU - Lahav, Ofer
AU - Lamman, Claire
AU - Landriau, Martin
AU - Guillou, Laurent Le
AU - Manera, Marc
AU - Meisner, Aaron
AU - Miquel, Ramon
AU - Nadathur, Seshadri
AU - Palanque-Delabrouille, Nathalie
AU - Percival, Will
AU - Poppett, Claire
AU - Prada, Francisco
AU - Pérez-Ràfols, Ignasi
AU - Rossi, Graziano
AU - Sanchez, Eusebio
AU - Schlegel, David
AU - Schubnell, Michael
AU - Seo, Hee-Jong
AU - Silber, Joseph Harry
N1 - Link to data is included, 19 pages 9 figures 4 Tables
PY - 2026/8/1
Y1 - 2026/8/1
N2 - Quasars acting as strong gravitational lenses offer a rare opportunity to probe the redshift evolution of scaling relations between supermassive black holes and their host galaxies, particularly the $M_{\mathrm{BH}}$--$M_{\mathrm{host}}$ relation. Using these powerful probes, the mass of the host galaxy can be precisely inferred from the Einstein radius $\theta_{\mathrm{E}}$. Using 812{,}118 quasars from DESI DR1 ($0.03 \leq z \leq 1.8$), we searched for quasars lensing higher-redshift galaxies by identifying background emission-line features in their spectra. To detect these rare systems, we trained a convolutional neural network (CNN) on mock lenses constructed from real DESI spectra of quasars and emission-line galaxies (ELGs), achieving a high classification performance (AUC = 0.99). We also trained a regression network to estimate the redshift of the background ELG. Applying this pipeline, we identified seven high-quality (Grade~A) lens candidates, each exhibiting a strong [O\,\textsc{ii}] doublet at a higher redshift than the foreground quasar; four candidates additionally show H$\beta$ and [O\,\textsc{iii}] emission. These results significantly expand the sample of quasar lens candidates beyond the twelve identified and three confirmed in previous work, and demonstrate the potential for scalable, data-driven discovery of quasars as strong lenses in upcoming spectroscopic surveys.
AB - Quasars acting as strong gravitational lenses offer a rare opportunity to probe the redshift evolution of scaling relations between supermassive black holes and their host galaxies, particularly the $M_{\mathrm{BH}}$--$M_{\mathrm{host}}$ relation. Using these powerful probes, the mass of the host galaxy can be precisely inferred from the Einstein radius $\theta_{\mathrm{E}}$. Using 812{,}118 quasars from DESI DR1 ($0.03 \leq z \leq 1.8$), we searched for quasars lensing higher-redshift galaxies by identifying background emission-line features in their spectra. To detect these rare systems, we trained a convolutional neural network (CNN) on mock lenses constructed from real DESI spectra of quasars and emission-line galaxies (ELGs), achieving a high classification performance (AUC = 0.99). We also trained a regression network to estimate the redshift of the background ELG. Applying this pipeline, we identified seven high-quality (Grade~A) lens candidates, each exhibiting a strong [O\,\textsc{ii}] doublet at a higher redshift than the foreground quasar; four candidates additionally show H$\beta$ and [O\,\textsc{iii}] emission. These results significantly expand the sample of quasar lens candidates beyond the twelve identified and three confirmed in previous work, and demonstrate the potential for scalable, data-driven discovery of quasars as strong lenses in upcoming spectroscopic surveys.
KW - astro-ph.GA
U2 - 10.3847/1538-4357/ae8014
DO - 10.3847/1538-4357/ae8014
M3 - Article
SN - 0004-637X
VL - 1006
JO - The Astrophysical Journal
JF - The Astrophysical Journal
IS - 2
M1 - 147
ER -