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arXiv · 2512.08970

Probing jet base emission of M87* with the 2021 Event Horizon Telescope observations

Saurabh·Hendrik Müller·Sebastiano D. von Fellenberg·Paul Tiede·Michael Janssen·Lindy Blackburn·Avery E. Broderick·Erandi Chavez·Boris Georgiev·Thomas P. Krichbaum·Kotaro Moriyama·Dhanya G. Nair·Iniyan Natarajan·Jongho Park·Andrew Thomas West·Maciek Wielgus·Kazunori Akiyama·Ezequiel Albentosa-Ruíz·Antxon Alberdi·Walter Alef·Juan Carlos Algaba·Richard Anantua·Keiichi Asada·Rebecca Azulay·Uwe Bach·Anne-Kathrin Baczko·David Ball·Mislav Baloković·Bidisha Bandyopadhyay·John Barrett·Michi Bauböck·Bradford A. Benson·Dan Bintley·Raymond Blundell·Katherine L. Bouman·Geoffrey C. Bower·Michael Bremer·Roger Brissenden·Silke Britzen·Dominique Broguiere·Thomas Bronzwaer·Sandra Bustamante·Douglas F. Carlos·John E. Carlstrom·Andrew Chael·Chi-kwan Chan·Dominic O. Chang·Koushik Chatterjee·Shami Chatterjee·Ming-Tang Chen·Yongjun Chen·Xiaopeng Cheng·Paul Chichura·Ilje Cho·Pierre Christian·Nicholas S. Conroy·John E. Conway·Thomas M. Crawford·Geoffrey B. Crew·Alejandro Cruz-Osorio·Yuzhu Cui·Brandon Curd·Rohan Dahale·Jordy Davelaar·Mariafelicia De Laurentis·Roger Deane·Gregory Desvignes·Jason Dexter·Vedant Dhruv·Indu K. Dihingia·Sheperd S. Doeleman·Sergio A. Dzib·Ralph P. Eatough·Razieh Emami·Heino Falcke·Joseph Farah·Vincent L. Fish·Edward Fomalont·H. Alyson Ford·Marianna Foschi·Raquel Fraga-Encinas·William T. Freeman·Per Friberg·Christian M. Fromm·Antonio Fuentes·Peter Galison·Charles F. Gammie·Roberto García·Olivier Gentaz·Ciriaco Goddi·Roman Gold·Arturo I. Gómez-Ruiz·José L. Gómez·Minfeng Gu·Mark Gurwell·Kazuhiro Hada·Daryl Haggard·Ronald Hesper·Dirk Heumann·Luis C. Ho

Abstract

We investigate the presence and spatial characteristics of the jet base emission in M87* at 230 GHz, enabled by the enhanced uv coverage in the 2021 Event Horizon Telescope (EHT) observations. The addition of the 12-m Kitt Peak Telescope and NOEMA provides two key intermediate-length baselines to SMT and the IRAM 30-m, giving sensitivity to emission structures at scales of $\sim250~\mu$as and $\sim2500~\mu$as (0.02 pc and 0.2 pc). Without these baselines, earlier EHT observations lacked the capability to constrain emission on large scales, where a "missing flux" of order $\sim1$ Jy is expected. To probe these scales, we analyzed closure phases, robust against station-based gain errors, and modeled the jet base emission using a simple Gaussian offset from the compact ring emission at separations $>100~\mu$as. Our analysis reveals a Gaussian feature centered at ($\Delta$RA $\approx320~\mu$as, $\Delta$Dec $\approx60~\mu$as), a projected separation of $\approx5500$ AU, with a flux density of only $\sim60$ mJy, implying that most of the missing flux in previous studies must arise from larger scales. Brighter emission at these scales is ruled out, and the data do not favor more complex models. This component aligns with the inferred direction of the large-scale jet and is consistent with emission from the jet base. While our findings indicate detectable jet base emission at 230 GHz, coverage from only two intermediate baselines limits reconstruction of its morphology. We therefore treat the recovered Gaussian as an upper limit on the jet base flux density. Future EHT observations with expanded intermediate-baseline coverage will be essential to constrain the structure and nature of this component.

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Saurabh, Hendrik Müller, Sebastiano D. von Fellenberg, Paul Tiede, Michael Janssen, Lindy Blackburn, Avery E. Broderick, Erandi Chavez, Boris Georgiev, Thomas P. Krichbaum, Kotaro Moriyama, Dhanya G. Nair, Iniyan Natarajan, Jongho Park, Andrew Thomas West, Maciek Wielgus, Kazunori Akiyama, Ezequiel Albentosa-Ruíz, Antxon Alberdi, Walter Alef, Juan Carlos Algaba, Richard Anantua, Keiichi Asada, Rebecca Azulay, Uwe Bach, Anne-Kathrin Baczko, David Ball, Mislav Baloković, Bidisha Bandyopadhyay, John Barrett, Michi Bauböck, Bradford A. Benson, Dan Bintley, Raymond Blundell, Katherine L. Bouman, Geoffrey C. Bower, Michael Bremer, Roger Brissenden, Silke Britzen, Dominique Broguiere, Thomas Bronzwaer, Sandra Bustamante, Douglas F. Carlos, John E. Carlstrom, Andrew Chael, Chi-kwan Chan, Dominic O. Chang, Koushik Chatterjee, Shami Chatterjee, Ming-Tang Chen, Yongjun Chen, Xiaopeng Cheng, Paul Chichura, Ilje Cho, Pierre Christian, Nicholas S. Conroy, John E. Conway, Thomas M. Crawford, Geoffrey B. Crew, Alejandro Cruz-Osorio, Yuzhu Cui, Brandon Curd, Rohan Dahale, Jordy Davelaar, Mariafelicia De Laurentis, Roger Deane, Gregory Desvignes, Jason Dexter, Vedant Dhruv, Indu K. Dihingia, Sheperd S. Doeleman, Sergio A. Dzib, Ralph P. Eatough, Razieh Emami, Heino Falcke, Joseph Farah, Vincent L. Fish, Edward Fomalont, H. Alyson Ford, Marianna Foschi, Raquel Fraga-Encinas, William T. Freeman, Per Friberg, Christian M. Fromm, Antonio Fuentes, Peter Galison, Charles F. Gammie, Roberto García, Olivier Gentaz, Ciriaco Goddi, Roman Gold, Arturo I. Gómez-Ruiz, José L. Gómez, Minfeng Gu, Mark Gurwell, Kazuhiro Hada, Daryl Haggard, Ronald Hesper, Dirk Heumann, Luis C. Ho. 2025-12-02. Probing jet base emission of M87* with the 2021 Event Horizon Telescope observations. https://doi.org/10.1051/0004-6361/202557022

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