Broadband phase-resolved spectroscopy shows inner disk temperature decreasing as apparent radius increases through the rise phase, with coronal electron temperature peaking then dropping sharply after the burst peak, consistent with radiation-pressure instability and seed-photon starvation.
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4 Pith papers cite this work. Polarity classification is still indexing.
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2026 4representative citing papers
Spectroscopic study of 11 LRDs at z~4 finds AGN origin for optical emission via broad Hα correlations and introduces a clumpy envelope model with growth timescales of 10^5-10^7 years.
Candidate 1.97 keV absorption line in HLX 2SXPS J111416.1+481833 interpreted as proton CRSF implying B ~ 4e14 G for a neutron star accretor.
Slim-disk self-shadowing plus accretion-rate-dependent BLR density enhancement explains the observed offsets of high-Eddington AGNs below the canonical R-L relation.
citing papers explorer
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Probing heartbeat oscillations from the black hole X-ray binary GRS 1915+105 using spectral-timing analysis
Broadband phase-resolved spectroscopy shows inner disk temperature decreasing as apparent radius increases through the rise phase, with coronal electron temperature peaking then dropping sharply after the burst peak, consistent with radiation-pressure instability and seed-photon starvation.
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The Structure and Evolution of LRDs: Insights from JWST NIRSpec Medium and High Resolution Spectroscopy at $z\sim4$
Spectroscopic study of 11 LRDs at z~4 finds AGN origin for optical emission via broad Hα correlations and introduces a clumpy envelope model with growth timescales of 10^5-10^7 years.
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Discovery of a Candidate 2 keV Cyclotron Resonance Scattering Feature in the HLX NGC 3583 X-1
Candidate 1.97 keV absorption line in HLX 2SXPS J111416.1+481833 interpreted as proton CRSF implying B ~ 4e14 G for a neutron star accretor.
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Understanding the Broad-line Region of Active Galactic Nuclei with Photoionization. II. Slim disks, Self-shadowing, and BLR sizes
Slim-disk self-shadowing plus accretion-rate-dependent BLR density enhancement explains the observed offsets of high-Eddington AGNs below the canonical R-L relation.