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The putative center in NGC 1052

10Citations signalées, ce qui n’est pas une note de qualité
136Institutions déclarées
23Pays d’affiliation déclarés

Rattachement africain : de, se, es, us, nl, jp, my, tw, cl, ca, fr, kr, cn, mx, it, Afrique du Sud, br, dk, hk, gr, pt, fi, gb. Niveau de preuve : code pays fourni par la source.

Le résumé fourni par la source

Context. Many active galaxies harbor powerful relativistic jets, however, the detailed mechanisms of their formation and acceleration remain poorly understood. Aims. To investigate the area of jet acceleration and collimation with the highest available angular resolution, we study the innermost region of the bipolar jet in the nearby low-ionization nuclear emission-line region (LINER) galaxy NGC 1052. Methods. We combined observations of NGC 1052 taken with VLBA, GMVA, and EHT over one week in the spring of 2017. Our study is focused on the size and continuum spectrum of the innermost region containing the central engine and the footpoints of both jets. We employed a synchrotron-self absorption model to fit the continuum radio spectrum and we combined the size measurements from close to the central engine out to ∼1 pc to study the jet collimation. Results. For the first time, NGC 1052 was detected with the EHT, providing a size of the central region in-between both jet bases of 43 μas perpendicular to the jet axes, corresponding to just around 250 RS (Schwarzschild radii). This size estimate supports previous studies of the jets expansion profile which suggest two breaks of the profile at around 3 × 103 RS and 1 × 104 RS distances to the core. Furthermore, we estimated the magnetic field to be 1.25 Gauss at a distance of 22 μas from the central engine by fitting a synchrotron-self absorption spectrum to the innermost emission feature, which shows a spectral turn-over at ∼130 GHz. Assuming a purely poloidal magnetic field, this implies an upper limit on the magnetic field strength at the event horizon of 2.6 × 104 Gauss, which is consistent with previous measurements. Conclusions. The complex, low-brightness, double-sided jet structure in NGC 1052 makes it a challenge to detect the source at millimeter (mm) wavelengths. However, our first EHT observations have demonstrated that detection is possible up to at least 230 GHz. This study offers a glimpse through the dense surrounding torus and into the innermost central region, where the jets are formed. This has enabled us to finally resolve this region and provide improved constraints on its expansion and magnetic field strength.

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Le contrôle bibliographique ouvert

DOI retrouvé dans Crossref DOI retrouvé ; titre concordant.

Titre Crossref
The putative center in NGC 1052
Date Crossref
01/12/2024
Éditeur
EDP Sciences
Type
journal-article

Ce recoupement confirme des métadonnées liées au DOI. Il ne confirme ni la méthode ni les conclusions de l’étude, et il ne compte pas comme une seconde source scientifique indépendante.

Les institutions déclarées

Max Planck Institute for Radio AstronomyChalmers University of TechnologyUniversity of WürzburgGoethe University FrankfurtUniversitat de ValènciaParc Científic de la Universitat de ValènciaYale UniversityWoodwell Climate Research CenterHarvard UniversityCenter for Astrophysics Harvard & SmithsonianUniversity of ArizonaApplied Mathematics (United States)Radboud University NijmegenNational Astronomical Observatory of JapanMassachusetts Institute of TechnologyInstituto de Astrofísica de AndalucíaUniversity of MalayaThe University of Texas at San AntonioRice UniversityInstitute of Astronomy and Astrophysics, Academia SinicaUniversity of ConcepciónUniversity of Illinois Urbana-ChampaignFermi National Accelerator LaboratoryUniversity of ChicagoEast Asian ObservatoryCalifornia Institute of TechnologyUniversity of Hawaiʻi at MānoaUniversity of Hawaii SystemPerimeter InstituteTrottier Space Institute at McGillMcGill UniversityAlbert Einstein College of MedicineInstitut de Radioastronomie MillimétriqueUniversity of WaterlooUniversity of Massachusetts AmherstKorea Astronomy and Space Science InstituteKorea University of Science and TechnologyPrinceton UniversityPrinceton Plasma Physics LaboratoryCornell UniversityChinese Academy of SciencesShanghai Astronomical ObservatoryYonsei UniversityFairfield UniversityUniversidad Nacional Autónoma de MéxicoShanghai Jiao Tong UniversityZhejiang LabIstituto Nazionale di Fisica Nucleare, Sezione di NapoliUniversity of Naples Federico IIUniversity of the WitwatersrandRhodes UniversityUniversity of PretoriaAstroTec Holding (Netherlands)Netherlands Institute for Radio AstronomyCentre National de la Recherche ScientifiqueUniversité Paris CitéUniversité Paris Sciences et LettresObservatoire de ParisSorbonne UniversitéLaboratoire d’études spatiales et d’instrumentation en astrophysiqueJoint Institute for Laboratory AstrophysicsUniversity of Colorado BoulderNational Astronomical ObservatoriesLas Cumbres Observatory Global Telescope NetworkUniversity of California, Santa BarbaraUniversité Bourgogne Franche-ComtéNational Radio Astronomy ObservatoryGoogle (United States)National Center for Supercomputing ApplicationsUniversity of CagliariUniversidade de São PauloIstituto Nazionale di Fisica Nucleare, Sezione di CagliariOsservatorio Astronomico di CagliariUniversity of Southern DenmarkNational Institute of Astrophysics, Optics and ElectronicsSecretaría de Ciencia, Humanidades, Tecnología e InnovaciónNagoya City UniversityUniversity of GroningenPeking UniversityKavli Institute for Theoretical SciencesThe Graduate University for Advanced Studies, SOKENDAIThe University of TokyoLeiden UniversityApplied Materials (United States)Whale Center of New EnglandBoston UniversityJoint Institute for VLBI ERICKorea Advanced Institute of Science and TechnologyUlsan National Institute of Science and TechnologyKogakuin UniversityNiigata UniversityNational Sun Yat-sen UniversityKitt Peak National ObservatoryChinese University of Hong KongNanjing UniversityIstituto di Radioastronomia di BolognaPontificia Universidad Católica de ValparaísoNational Taiwan UniversityYunnan ObservatoriesUniversity of AmsterdamEuropean Space Research and Technology CentreInstituto de Radioastronomía MilimétricaHachinohe National College of TechnologyNational Institute of TechnologyAcademy of AthensVillanova UniversityWashington University in St. LouisUniversity of AveiroGeorgia Institute of TechnologyKyung Hee UniversityCanadian Institute for Advanced ResearchUniversity of TorontoCanadian Institute for Theoretical AstrophysicsUniversity of California, BerkeleyFoundation for Research and Technology HellasUniversity of TriesteIstituto Nazionale di Fisica Nucleare, Sezione di TriesteNational Taiwan Normal UniversityUniversity of TurkuTurku Centre for Computer ScienceAalto UniversityGemini North ObservatoryHiroshima UniversityTokyo Institute of TechnologyUniversity of LancashireUniversity of LethbridgeDutch Research CouncilSeoul National UniversityUniversity of New MexicoBrandeis UniversityInstitute for Advanced StudyHuazhong University of Science and TechnologyUniversity College LondonFudan UniversityUniversity of Science and Technology of ChinaMichigan State University

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Les sujets associés

Astrophysical Phenomena and ObservationsStellar, planetary, and galactic studiesGalaxies: Formation, Evolution, Phenomena

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