Demonstrating Photon Ring Existence with Single-baseline Polarimetry

Daniel C. M. Palumbo, G. Wong, A. Chael, Michael D. Johnson
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引用次数: 1

Abstract

Images of supermassive black hole accretion flows contain features of both curved spacetime and plasma structure. Inferring properties of the spacetime from images requires modeling the plasma properties, and vice versa. The Event Horizon Telescope Collaboration has imaged near-horizon millimeter emission from both Messier 87* (M87*) and Sagittarius A* (Sgr A*) with very long baseline interferometry (VLBI) and has found a preference for magnetically arrested disk (MAD) accretion in each case. MAD accretion enables spacetime measurements through future observations of the photon ring, the image feature composed of near-orbiting photons. The ordered fields and relatively weak Faraday rotation of MADs yield rotationally symmetric polarization when viewed at modest inclination. In this letter, we utilize this symmetry along with parallel transport symmetries to construct a gain-robust interferometric quantity that detects the transition between the weakly lensed accretion flow image and the strongly lensed photon ring. We predict a shift in polarimetric phases on long baselines and demonstrate that the photon rings in M87* and Sgr A* can be unambiguously detected with sensitive, long-baseline measurements. For M87*, we find that photon ring detection in snapshot observations requires ∼1 mJy sensitivity on >15 Gλ baselines at 230 GHz and above, which could be achieved with space-VLBI or higher-frequency ground-based VLBI. For Sgr A*, we find that interstellar scattering inhibits photon ring detectability at 230 GHz, but ∼10 mJy sensitivity on >12 Gλ baselines at 345 GHz is sufficient and is accessible from the ground. For both sources, these sensitivity requirements may be relaxed by repeated observations and averaging.
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用单基线偏振法证明光子环的存在
超大质量黑洞吸积流图像包含了弯曲时空和等离子体结构的特征。从图像中推断时空特性需要对等离子体特性进行建模,反之亦然。事件视界望远镜合作项目利用超长基线干涉测量法(VLBI)对梅西耶87* (M87*)和人马座A* (Sgr A*)的近视界毫米辐射进行了成像,并发现在每一种情况下都倾向于磁捕获盘(MAD)吸积。通过未来对光子环的观测,MAD吸积使时空测量成为可能,光子环是由近轨道光子组成的图像特征。在适度倾斜下观察,MADs的有序场和相对弱的法拉第旋转产生旋转对称极化。在这封信中,我们利用这种对称性以及平行输运对称性来构建一个增益鲁棒干涉量,用于检测弱透镜吸积流图像和强透镜光子环之间的转换。我们预测在长基线上偏振相位的变化,并证明M87*和Sgr a *中的光子环可以通过敏感的长基线测量来明确地检测到。对于M87*,我们发现快照观测中的光子环探测在230 GHz及以上的>15 λ基线上需要~ 1 mJy灵敏度,这可以通过空间VLBI或更高频率的地面VLBI来实现。对于Sgr A*,我们发现星际散射抑制了230 GHz的光子环可探测性,但在345 GHz的>12 GHz基线上的~ 10 mJy灵敏度是足够的,并且可以从地面获得。对于这两种源,这些灵敏度要求可以通过重复观察和平均来放宽。
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