Abstract We used the NSF Jansky Very Large Array at a frequencyν = 22 GHz to study the nearest billion-solar-mass black hole (BH), in the early-type galaxy NGC 3115 at a distance of 9.7 Mpc. We localize a faint continuum nucleus, with flux densityS22 GHz = 48.2 ± 6.4μJy, to a FWHM diameterd22 GHz < 59 mas (2.8 pc). We find no evidence for adjacent emission within a stagnation region of radiusRsta ∼ 360 mas (17 pc) identified in a recent hydrodynamic simulation tailored to NGC 3115. Within that region, the simulated gas flow developed into an advection-dominated accretion flow (ADAF). The nucleus’ luminosity densityL22 GHz = 5.4 × 1017W Hz−1is about 60 times that of Sagittarius A⋆. The nucleus’ spectral index (Sν ∝ να) indicates optically thin synchrotron emission. The spectral energy distribution of the nucleus peaks nearνpeak = 9 GHz. Modeling this radio peak as an ADAF implies a BH massMADAF = (1.2 ± 0.2) × 109M⊙, consistent with previous estimates of (1–2) × 109M⊙from stellar or hot-gas dynamics. Also, the Eddington-scaled accretion rate for NGC 3115, , is about 4–8 times lower than recent estimates for Sagittarius A⋆.
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Search for Neutrino Emission from Hard X-Ray AGN with IceCube
Abstract Active galactic nuclei (AGN) are promising candidate sources of high-energy astrophysical neutrinos, since they provide environments rich in matter and photon targets where cosmic-ray interactions may lead to the production of gamma rays and neutrinos. We searched for high-energy neutrino emission from AGN using the Swift-BAT Spectroscopic Survey catalog of hard X-ray sources and 12 yr of IceCube muon track data. First, upon performing a stacked search, no significant emission was found. Second, we searched for neutrinos from a list of 43 candidate sources and found an excess from the direction of two sources, the Seyfert galaxies NGC 1068 and NGC 4151. We observed NGC 1068 at flux = TeV−1cm−2s−1normalized at 1 TeV, with a power-law spectral indexγ= 3.10 , consistent with previous IceCube results. The observation of a neutrino excess from the direction of NGC 4151 is at a posttrial significance of 2.9σ. If interpreted as an astrophysical signal, the excess observed from NGC 4151 corresponds to a flux = TeV−1cm−2s−1normalized at 1 TeV andγ= 2.83 .
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- PAR ID:
- 10616056
- Author(s) / Creator(s):
- ; ; ; ; ; ; ; ; ; ; ; ; ; ; ; ; ; ; ; more »
- Publisher / Repository:
- IOP
- Date Published:
- Journal Name:
- The Astrophysical Journal
- Volume:
- 981
- Issue:
- 2
- ISSN:
- 0004-637X
- Page Range / eLocation ID:
- 131
- Format(s):
- Medium: X
- Sponsoring Org:
- National Science Foundation
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