Attenzione: i dati modificati non sono ancora stati salvati. Per confermare inserimenti o cancellazioni di voci è necessario confermare con il tasto SALVA/INSERISCI in fondo alla pagina
CRIS Current Research Information System
The well-known bimodality between star-forming discs and quiescent spheroids requires the existence of two main processes: galaxy quenching, causing the strong reduction of star formation, and morphological transformation, causing the transition from disc-dominated structures to bulge-dominated ones. In this paper, we aim to understand the link between these two processes and their relation with the stellar mass of galaxies and their local environment. Taking advantage of the first data released by the Euclid Collaboration, covering more than 60 deg2 with space-based imaging and photometry, we analyse a mass-complete sample of nearly one million galaxies in the range 0.25 < z < 1 with M* > 109.5 M⊙, using a combination of photometric and spectroscopic redshifts. We divide the sample into four sub-populations of galaxies, based on their star-formation activity (star-forming and quiescent) and morphology (disc-dominated and bulge-dominated). We then analyse the physical properties of these populations and their relative abundances in the stellar mass versus local density plane. Together with confirming the passivity-density relation and the morphology-density relation, we find that quiescent discy galaxies are more abundant in the low-mass regime of high-density environment where log10(1 + δ) > 1.3. At the same time, star-forming bulge-dominated galaxies are more common in field regions with log10(1 + δ) < 0.8, preferentially at high masses. Building on these results and interpreting them through comparison with simulations, we propose a scenario where the evolution of galaxies in the field significantly differs from that in higher-density environments. The morphological transformation in the majority of field galaxies takes place before the onset of quenching and is mainly driven by secular processes taking place within the main sequence, leading to the formation of star-forming bulge-dominated galaxies as intermediate-stage galaxies. Conversely, quenching of star formation precedes morphological transformation for most galaxies in higher-density environments. This causes the formation of quiescent disc-dominated galaxies before their transition into bulge-dominated ones.
Gentile, F., Daddi, E., Elbaz, D., Enia, A., Magnelli, B., Billand, J.-B., et al. (2026). Euclid Quick Data Release (Q1): XII. Quenching precedes bulge formation in dense environments but follows it in the field. ASTRONOMY & ASTROPHYSICS, 711, 1-17 [10.1051/0004-6361/202557633].
Euclid Quick Data Release (Q1): XII. Quenching precedes bulge formation in dense environments but follows it in the field
F. Gentile;E. Daddi;D. Elbaz;A. Enia;B. Magnelli;J. -B. Billand;P. Corcho-Caballero;C. Cleland;G. De Lucia;C. D'Eugenio;M. Fossati;M. Franco;C. Lobo;Y. Lyu;M. Magliocchetti;G. A. Mamon;L. Quilley;J. G. Sorce;M. Tarrasse;M. Bolzonella;F. Durret;L. Gabarra;S. Guo;L. Pozzetti;S. Quai;F. Shankar;V. Sangalli;M. Talia;M. Baes;H. Fu;M. Girardi;J. Matthee;P. A. Oesch;D. Roberts;J. Schaye;D. Scott;L. Spinoglio;B. Altieri;A. Amara;S. Andreon;N. Auricchio;C. Baccigalupi;M. Baldi;A. Balestra;S. Bardelli;R. Bender;A. Biviano;E. Branchini;M. Brescia;J. Brinchmann;S. Camera;G. Cañas-Herrera;V. Capobianco;C. Carbone;J. Carretero;S. Casas;M. Castellano;G. Castignani;S. Cavuoti;K. C. Chambers;A. Cimatti;C. Colodro-Conde;G. Congedo;L. Conversi;Y. Copin;F. Courbin;H. M. Courtois;M. Cropper;A. Da Silva;H. Degaudenzi;C. Dolding;H. Dole;F. Dubath;C. A. J. Duncan;X. Dupac;S. Dusini;S. Escoffier;M. Fabricius;M. Farina;R. Farinelli;S. Ferriol;F. Finelli;N. Fourmanoit;M. Frailis;E. Franceschi;M. Fumana;S. Galeotta;K. George;B. Gillis;C. Giocoli;J. Gracia-Carpio;A. Grazian;F. Grupp;S. Gwyn;S. V. H. Haugan;J. Hoar;W. Holmes;I. M. Hook;F. Hormuth;A. Hornstrup;K. Jahnke;M. Jhabvala;B. Joachimi;E. Keihänen;S. Kermiche;A. Kiessling;B. Kubik;M. Kümmel;M. Kunz;H. Kurki-Suonio;A. M. C. Le Brun;S. Ligori;P. B. Lilje;V. Lindholm;I. Lloro;G. Mainetti;D. Maino;E. Maiorano;O. Mansutti;O. Marggraf;M. Martinelli;N. Martinet;F. Marulli;R. J. Massey;E. Medinaceli;S. Mei;M. Melchior;Y. Mellier;M. Meneghetti;E. Merlin;G. Meylan;A. Mora;M. Moresco;L. Moscardini;R. Nakajima;S. -M. Niemi;C. Padilla;S. Paltani;F. Pasian;K. Pedersen;W. J. Percival;V. Pettorino;S. Pires;G. Polenta;M. Poncet;L. A. Popa;F. Raison;A. Renzi;J. Rhodes;G. Riccio;E. Romelli;M. Roncarelli;R. Saglia;Z. Sakr;D. Sapone;B. Sartoris;P. Schneider;T. Schrabback;A. Secroun;G. Seidel;S. Serrano;P. Simon;C. Sirignano;G. Sirri;J. Skottfelt;L. Stanco;J. Steinwagner;P. Tallada-Crespí;A. N. Taylor;H. I. Teplitz;I. Tereno;N. Tessore;S. Toft;R. Toledo-Moreo;F. Torradeflot;I. Tutusaus;L. Valenziano;J. Valiviita;T. Vassallo;G. Verdoes Kleijn;A. Veropalumbo;Y. Wang;J. Weller;A. Zacchei;G. Zamorani;I. A. Zinchenko;E. Zucca;V. Allevato;M. Ballardini;E. Bozzo;C. Burigana;R. Cabanac;M. Calabrese;A. Cappi;D. Di Ferdinando;J. A. Escartin Vigo;W. G. Hartley;J. Martín-Fleitas;S. Matthew;N. Mauri;R. B. Metcalf;A. Pezzotta;M. Pöntinen;I. Risso;V. Scottez;M. Sereno;M. Tenti;M. Viel;M. Wiesmann;Y. Akrami;I. T. Andika;S. Anselmi;M. Archidiacono;F. Atrio-Barandela;D. Bertacca;M. Bethermin;L. Bisigello;A. Blanchard;L. Blot;H. Böhringer;M. Bonici;S. Borgani;M. L. Brown;S. Bruton;A. Calabro;B. Camacho Quevedo;F. Caro;C. S. Carvalho;T. Castro;F. Cogato;S. Conseil;T. Contini;A. R. Cooray;O. Cucciati;G. Desprez;A. Díaz-Sánchez;S. Di Domizio;J. M. Diego;P. Dimauro;P. -A. Duc;M. Y. Elkhashab;Y. Fang;A. Finoguenov;A. Fontana;F. Fontanot;A. Franco;K. Ganga;J. García-Bellido;T. Gasparetto;V. Gautard;R. Gavazzi;E. Gaztanaga;F. Giacomini;F. Gianotti;A. H. Gonzalez;G. Gozaliasl;M. Guidi;C. M. Gutierrez;A. Hall;S. Hemmati;H. Hildebrandt;J. Hjorth;J. J. E. Kajava;Y. Kang;V. Kansal;D. Karagiannis;K. Kiiveri;J. Kim;C. C. Kirkpatrick;S. Kruk;L. Legrand;M. Lembo;F. Lepori;G. Leroy;G. F. Lesci;J. Lesgourgues;L. Leuzzi;T. I. Liaudat;A. Loureiro;J. Macias-Perez;E. A. Magnier;F. Mannucci;R. Maoli;C. J. A. P. Martins;L. Maurin;M. Miluzio;P. Monaco;C. Moretti;G. Morgante;K. Naidoo;A. Navarro-Alsina;S. Nesseris;D. Paoletti;F. Passalacqua;K. Paterson;L. Patrizii;A. Pisani;D. Potter;M. Radovich;G. Rodighiero;S. Sacquegna;M. Sahlén;D. B. Sanders;E. Sarpa;C. Scarlata;A. Schneider;M. Schultheis;D. Sciotti;E. Sellentin;L. C. Smith;S. A. Stanford;K. Tanidis;G. Testera;R. Teyssier;S. Tosi;A. Troja;M. Tucci;C. Valieri;A. Venhola;D. Vergani;G. Verza;P. Vielzeuf;N. A. Walton
2026
Abstract
The well-known bimodality between star-forming discs and quiescent spheroids requires the existence of two main processes: galaxy quenching, causing the strong reduction of star formation, and morphological transformation, causing the transition from disc-dominated structures to bulge-dominated ones. In this paper, we aim to understand the link between these two processes and their relation with the stellar mass of galaxies and their local environment. Taking advantage of the first data released by the Euclid Collaboration, covering more than 60 deg2 with space-based imaging and photometry, we analyse a mass-complete sample of nearly one million galaxies in the range 0.25 < z < 1 with M* > 109.5 M⊙, using a combination of photometric and spectroscopic redshifts. We divide the sample into four sub-populations of galaxies, based on their star-formation activity (star-forming and quiescent) and morphology (disc-dominated and bulge-dominated). We then analyse the physical properties of these populations and their relative abundances in the stellar mass versus local density plane. Together with confirming the passivity-density relation and the morphology-density relation, we find that quiescent discy galaxies are more abundant in the low-mass regime of high-density environment where log10(1 + δ) > 1.3. At the same time, star-forming bulge-dominated galaxies are more common in field regions with log10(1 + δ) < 0.8, preferentially at high masses. Building on these results and interpreting them through comparison with simulations, we propose a scenario where the evolution of galaxies in the field significantly differs from that in higher-density environments. The morphological transformation in the majority of field galaxies takes place before the onset of quenching and is mainly driven by secular processes taking place within the main sequence, leading to the formation of star-forming bulge-dominated galaxies as intermediate-stage galaxies. Conversely, quenching of star formation precedes morphological transformation for most galaxies in higher-density environments. This causes the formation of quiescent disc-dominated galaxies before their transition into bulge-dominated ones.
Gentile, F., Daddi, E., Elbaz, D., Enia, A., Magnelli, B., Billand, J.-B., et al. (2026). Euclid Quick Data Release (Q1): XII. Quenching precedes bulge formation in dense environments but follows it in the field. ASTRONOMY & ASTROPHYSICS, 711, 1-17 [10.1051/0004-6361/202557633].
I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.
Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11585/1078570
Attenzione
Attenzione! I dati visualizzati non sono stati sottoposti a validazione da parte dell'ateneo
Citazioni
ND
ND
ND
ND
social impact
Conferma cancellazione
Sei sicuro che questo prodotto debba essere cancellato?
simulazione ASN
Il report seguente simula gli indicatori relativi alla propria produzione scientifica in relazione alle soglie ASN 2023-2025 del proprio SC/SSD. Si ricorda che il superamento dei valori soglia (almeno 2 su 3) è requisito necessario ma non sufficiente al conseguimento dell'abilitazione. La simulazione si basa sui dati IRIS e sugli indicatori bibliometrici alla data indicata e non tiene conto di eventuali periodi di congedo obbligatorio, che in sede di domanda ASN danno diritto a incrementi percentuali dei valori. La simulazione può differire dall'esito di un’eventuale domanda ASN sia per errori di catalogazione e/o dati mancanti in IRIS, sia per la variabilità dei dati bibliometrici nel tempo. Si consideri che Anvur calcola i valori degli indicatori all'ultima data utile per la presentazione delle domande.
La presente simulazione è stata realizzata sulla base delle specifiche raccolte sul tavolo ER del Focus Group IRIS coordinato dall’Università di Modena e Reggio Emilia e delle regole riportate nel DM 589/2018 e allegata Tabella A. Cineca, l’Università di Modena e Reggio Emilia e il Focus Group IRIS non si assumono alcuna responsabilità in merito all’uso che il diretto interessato o terzi faranno della simulazione. Si specifica inoltre che la simulazione contiene calcoli effettuati con dati e algoritmi di pubblico dominio e deve quindi essere considerata come un mero ausilio al calcolo svolgibile manualmente o con strumenti equivalenti.