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Euclid preparation. The shape of halo profiles in $\Lambda$CDM and non-standard cosmologies

Euclid Collaboration L. Pizzuti G. Y. Ferron A. Ragagnin A. L. Le Brun Pier Stefano Corasaniti T. Gayoux G. R'acz E. Altamura Z. Sakr C. Carbone M. Baldi C. Giocoli T. Castro F. Pace J. Taylor S. Borgani O. Luongo C. T. Mpetha R. Angulo B. Altieri S. Andreon N. Auricchio C. Baccigalupi S. Bardelli P. Battaglia A. Biviano E. Branchini M. Brescia S. Camera V. Capobianco V. Cardone J. Carretero M. Castellano G. Castignani S. Cavuoti K. Chambers A. Cimatti C. Colodro-Conde G. Congedo L. Conversi Y. Copin F. Courbin H. Courtois M. Cropper H. Degaudenzi G. de Lucia H. Dole F. Dubath X. Dupac S. Dusini S. Escoffier M. Farina F. Faustini S. Ferriol F. Finelli P. Fosalba S. Fotopoulou M. Frailis E. Franceschi M. Fumana L. Gabarra S. Galeotta K. George B. Gillis J. Graciá-Carpio A. Grazian F. Grupp S. Haugan S. Hemmati W. Holmes F. Hormuth A. Hornstrup K. Jahnke M. Jhabvala B. Joachimi S. Kermiche A. Kiessling B. Kubik K. Kuijken M. Kunz H. Kurki-Suonio S. Ligori P. Lilje V. Lindholm I. Lloro M. Magliocchetti G. Mainetti O. Mansutti O. Marggraf M. Martinelli N. Martinet F. Marulli R. Massey N. Mauri S. Maurogordato E. Medinaceli S. Mei M. Meneghetti E. Merlin G. Meylan P. Monaco A. Mora Michele Moresco C. Moretti L. Moscardini E. Munari C. Neissner J. Nightingale C. Padilla S. Paltani F. Pasian V. Pettorino A. Pezzotta S. Pires G. Polenta M. Poncet L. Popa F. Raison A. Renzi J. Rhodes G. Riccio I. Risso E. Romelli M. Roncarelli R. Saglia D. Sapone B. Sartoris P. Schneider T. Schrabback A. Secroun E. Sefusatti E. Sihvola P. Simon C. Sirignano G. Sirri L. Stanco J. Starck P. Tallada-Cresp'i A. Taylor I. Tereno N. Tessore S. Toft R. Toledo-Moreo F. Torradeflot I. Tutusaus E. Valentijn J. Valiviita T. Vassallo Y. Wang J. Weller A. Zacchei G. Zamorani F. Zerbi E. Zucca M. Ballardini P. Bergamini A. Boucaud E. Bozzo C. Burigana R. Cabanac M. Calabrese A. Cappi F. Caro J. A. Escartin Vigo J. García-Bellido T. Gasparetto J. Macias-Perez R. Maoli R. Metcalf M. Pöntinen E. Sarpa V. Scottez M. Sereno M. Tenti M. Tucci M. Viel M. Wiesmann J. A. Acevedo Barroso Y. Akrami I. Andika S. Anselmi M. Archidiacono G. Arico F. Atrio-Barandela M. Baes L. Bazzanini D. Bertacca M. Béthermin F. Beutler A. Blanchard L. Blot H. Bohringer M. L. Brown S. Bruton A. Calabró B. Quevedo C. Carvalho F. Cogato T. Collett S. Conseil A. Cooray P. Corcho-Caballero M. Costanzi B. Csizi O. Cucciati T. D. de Boer F. De Paolis G. Desprez A. Díaz-Sánchez S. Di Domizio J. M. Diego V. Duret Y. Fang A. Farina A. Finoguenov F. Fontanot A. Franco Y. Fu K. Ganga R. Gavazzi E. Gaztañaga Z. Ghaffari F. Giacomini F. Gianotti E. J. Gonzalez G. Gozaliasl A. Gruppuso M. Guidi C. Gutierrez A. Hall N. Hatch C. Hern'andez-Monteagudo H. Hildebrandt J. Hjorth J. Kajava Y. Kang Vanshika Kansal D. Karagiannis J. Kim C. Kirkpatrick A. Kovács I. Kovačić K. Koyama S. Kruk Marco C. Lam M. Lattanzi L. Legrand M. Lembo G. Leroy G. Lesci J. Lesgourgues L. Linke A. Manjón-García F. Mannucci F. Marleau C. J. A. Martins M. Migliaccio M. Miluzio G. Morgante S. Nadathur K. Naidoo A. Navarro-Alsina S. Nesseris F. Oppizzi D. Paoletti F. Passalacqua K. Paterson L. Patrizii C. Pattison R. Paviot A. Pisani D. Potter G. W. Pratt S. Quai M. Radovich G. Rodighiero W. Roster S. Sacquegna M. Sahlén D. Sanders A. Schneider D. Sciotti E. Sellentin S. Serjeant F. Shankar L. Smith J. Sorce I. Szapudi K. Tanidis C. Tao F. Tarsitano G. Testera R. Teyssier S. Tosi A. Troja C. Uhlemann C. Valieri A. Venhola D. Vergani G. Verza P. Vielzeuf S. Vinciguerra M. von Wietersheim-Kramsta L. Wang A. H. Wright H. W. Y. D. D. F. Occhialini U. D. M. -. Bicocca 3. PiazzadellaScienza 20133 Milano Italy INAF-Osservatorio Astronomico di Trieste 11 ViaG.B.Tiepolo 34151 Trieste Laboratoire D'Etude de l'Univers Et Des Phenomenes eXtremes Observatoire de Paris Universit'e Psl Sorbonne Universit'e Cnrs 92190 Meudon France Institut d'Astrophysique de Paris Umr 98 bis boulevard Arago 75005 Paris Universit'e Paris-Cit'e 5. R. T. Mann 75013 Paris D. Physics 64 P.O.Box U. Helsinki 0. Helsinki Finland J. B. C. F. Astrophysics Astronomy U. Manchester Oxford Road M13 9PL Uk Yusuf Hamied Department of Chemistry U. Cambridge Lensfield Road Cambridge CB2 1EW Instituto de Física Teórica UAM-CSIC Campus de Cantoblanco 28692 Madrid Spain Institut de Recherche en Astrophysique et Plan'etologie U. Toulouse Ups Cnes 18 avenue Edouard Belin 31400 Toulouse Universit'e St Joseph Faculty of Nuclear Sciences Beirut Lebanon Inaf-Iasf Milano 12 ViaAlfonsoCorti 20133 Milano D. Astronomia U. Bologna V. Gobetti 40129 Bologna INAF-Osservatorio di Astrofisica e Scienza Dello Spazio di Bologna V. Gobetti I. di Bologna 62 VialeBertiPichat 40129 Bologna Infn Sezione di Trieste 2. ViaValerio TS 34127Trieste Ifpu Institute for Fundamental Physics of the Universe 2. viaBeirut 34151 Trieste ICSC-Centro Nazionale di Ricerca In High Performance Computing Big Data e Quantum Computing 2. ViaMagnanelli Bologna D. Fisica U. Torino 1. viaP.Giuria 10125 Torino INFN-Sezione di Torino INAF-Osservatorio Astrofisico di Torino 20 viaOsservatorio 1. P. Torinese Instituto de Astrofísica e Ciências do Espaço F. D. de Ciências Universidade de Lisboa C. Grande 1749-016 Lisboa Portugal U. Waterloo Waterloo Ontario N2L 3G1 Canada Waterloo Centre for Astrophysics D. Astronomia Università di Trieste 11 ViaTiepolo 34151 Trieste INAF-Osservatorio Astronomico di Brera 28 ViaBrera 20133 Milano Nasa Goddard Space Flight Center Greenbelt MD 20771 Usa Donostia International Physics Center P. M. de Lardizábal 20018 Donostia-San Sebasti'an Guipuzkoa Ikerbasque Basque Foundation for Science 48013 Bilbao Esacesa C. D. del Castillo Sn. Urb. Villafranca del Castillo 28692 Villanueva de la Cañada Madrid Sissa International School For Advanced Studies Via Bonomea TS 34136Trieste U. Genova 33 viaDodecaneso 16146 Genova INFN-Sezione di Genova D. Pancini University Federico 6. ViaCinthia 80126 Napoli INAF-Osservatorio Astronomico di Capodimonte 16 ViaMoiariello 80131 Napoli INAF-Osservatorio Astronomico di Roma 33 viaFrascati 00078 Monteporzio Catone INFN-Sezione di Roma P. A. Moro 2. -. C. D. D. Fisica Edificio G. Marconi 00133 Roma Centro de Investigaciones Energ'eticas Medioambientales Y. Tecnol'ogicas 40 AvenidaComplutense 28692 Madrid Port d'Informaci'O Cient'ifica C. Uab C. Sn 08193 Bellaterra INFN-Sezione di Napoli I. F. Astronomy U. Hawai'i 2680 Woodlawn Drive Honolulu Hi D. Bologna Instituto de Astrofı́sica de Canarias E. Laguna Tenerife U. Edinburgh Royal Observatory B. Hill Edinburgh EH9 3HJ European Space AgencyESRIN 1. LargoGalileoGalilei 00044 Frascati Roma 1. Universit'eClaudeBernardLyon CNRS-IN2P3 Ipn Lyon Umr Villeurbanne F-69100 Institut de Ciències del Cosmos U. Barcelona 1. Mart'iiFranques 08193 Barcelona I. C. de Recerca I Estudis Avançats 23 PasseigdeLluı́sCompanys 08193 Barcelona Institut de Ciencies de l'Espai Carrer de Can Magrans Sn Cerdanyola del Vall'es 08193 Barcelona 1. UCBLyon Iuf 4. R. E. Fermi 69622 Villeurbanne Mullard Space Science Laboratory U. London
Sep 2026 · 0 citations · 18 references
Physics

Abstract

We study the shape of three-dimensional and projected dark-matter halo profiles extracted from cosmological $N$-body simulations in $\Lambda$CDM and non-standard cosmologies, using the \texttt{DUSTGRAIN-PF} and \texttt{DEMNUni} suites. The models considered include massive neutrinos, $f(\mathcal{R})$ gravity, and dynamical dark energy. By comparing density, mass, velocity-dispersion, and excess-surface-density profiles up to $5\,r_{500{\rm c}}$, we quantify the differential imprint of non-standard physics on halo structure in view of \textit{Euclid} cluster WL studies. Our main analysis is performed at $z=1.1$, a high-redshift regime where the weak-lensing signal-to-noise starts to degrade, providing a conservative stress test for detectability; for \texttt{DUSTGRAIN-PF} we additionally analyse $z=0.5$ and $z=0.3$ snapshots. In low-mass haloes ($M_{\rm 200c}<7\times10^{13}\,M_\odot$), $f(\mathcal{R})$ gravity produces deviations of order $10\,\%$ in projected and three-dimensional profiles, especially in the outskirts where screening is less efficient. Massive neutrinos partially reduce this signal, reflecting the competition between free streaming and fifth-force-enhanced growth. Dynamical dark energy and massive-neutrino cosmologies generally induce smaller, few-percent deviations, with the largest effects again found in low-mass haloes and at large radii. Under simplified assumptions for \Euclid WL, detecting such profile differences at $z=1.1$ requires stacks of $\sim10^5$ haloes, while a few thousands haloes may be sufficient at $z\lesssim0.5$. This further calls for the need of integrating such precise modelling of non-standard effects -- along with other observational effects -- in any likelihood involving \textit{Euclid} WL masses to avoid non-negligible systematic biases. Concentration--mass relations show weaker cosmology dependence, typically at the $\sim5\,\%$ level. [...]

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