首页> 外文期刊>Astronomy and astrophysics >Proper motion in lensed radio jets at redshift 3: A possible dual super-massive black hole system in the early Universe ?
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Proper motion in lensed radio jets at redshift 3: A possible dual super-massive black hole system in the early Universe ?

机译:镜头无线电射流在红移3时的正确运动:早期宇宙 <相关对象的对象类型可能是双超大质量黑洞系统=“ tableCDS” source-id =“ http://cdsarc.u-strasbg.fr/viz-bin/cat/J/A+A/630/A108” source-id-type =“ url” />

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In this paper, we exploit the gravitational lensing effect to detect proper motion in the highly magnified gravitationally lensed source MG B2016+112. We find positional shifts up to 6 mas in the lensed images by comparing two Very Long Baseline Interferometric (VLBI) radio observations at 1.7 GHz that are separated by 14.359 years, and provide an astrometric accuracy of the order of tens of μ as. From lens modelling, we exclude a shift in the lensing galaxy as the cause of the positional change of the lensed images, and we assign it to the background source. The source consists of four sub-components separated by ~175 pc, with proper motion of the order of tens μ as yr~(?1)for the two components at highest magnification ( μ ?~?350) and of the order of a few mas yr~(?1)for the two components at lower magnification ( μ ?~?2). We propose single active galactic nuclei (AGN) and dual AGN scenarios to explain the source plane. Although, the latter interpretation is supported by the archival multi-wavelength properties of the object. In this case, MG B2016+112 would represent the highest redshift dual radio-loud AGN system discovered thus far, and would support the merger interpretation for such systems. Also, given the low probability (~10~(?5)) of detecting a dual AGN system that is also gravitationally lensed, if confirmed, this would suggest that such dual AGN systems must be more abundant in the early Universe than currently thought.
机译:在本文中,我们利用重力透镜效应来检测高度放大的重力透镜源MG B2016 + 112中的适当运动。通过比较间隔为14.359年的1.7 GHz处的两个超长基线干涉(VLBI)无线电观测,我们在镜头图像中发现了高达6 mas的位置偏移,并提供了数十μ量级的天文精度。从镜头建模中,我们排除了镜头星系的移动是镜头图像位置变化的原因,并将其分配给背景源。光源由四个子成分组成,每个子成分之间的间隔约为175 pc,最高放大倍率(μ〜〜350)的两个分量的yr〜(?1)的运动量约为几十μ(yr〜(?1)),其运动量约为a。较低放大倍率(μ?〜?2)的两个分量几乎为mas yr〜(?1)。我们提出了单活动银河核(AGN)和双AGN场景来解释源平面。虽然,后一种解释受对象的档案多波长属性支持。在这种情况下,MG B2016 + 112将代表迄今为止发现的最高的红移双无线电响AGN系统,并将支持此类系统的合并解释。同样,如果检测到也被引力透镜化的双AGN系统的可能性很小(〜10〜(?5)),那么如果得到证实,这表明在早期宇宙中,这种双AGN系统必须比目前所认为的更为丰富。

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