Microlensing of the broad line region in 17 lensed quasars

被引:107
作者
Sluse, D. [1 ,2 ]
Hutsemekers, D. [3 ]
Courbin, F. [4 ]
Meylan, G. [4 ]
Wambsganss, J. [1 ]
机构
[1] Heidelberg Univ, Astronom Rechen Inst Zentrum Astron, D-69120 Heidelberg, Germany
[2] Argelander Inst Astron, D-53121 Bonn, Germany
[3] Univ Liege, FRS FNRS, Inst Astrophys & Geophys, B-4000 Liege, Belgium
[4] EPFL, Observ Sauverny, Astrophys Lab, CH-1290 Versoix, Switzerland
基金
瑞士国家科学基金会;
关键词
gravitational lensing: micro; gravitational lensing: strong; line: formation; quasars: general; quasars: emission lines; ACTIVE GALACTIC NUCLEI; BLACK-HOLE MASSES; FLUX-RATIO ANOMALIES; INTEGRAL FIELD SPECTROSCOPY; SMALL-SCALE STRUCTURE; OPTICAL-TIME-DELAY; GRAVITATIONAL LENS; X-RAY; EMISSION-LINES; BAL QUASAR;
D O I
10.1051/0004-6361/201219125
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
When an image of a strongly lensed quasar is microlensed, the different components of its spectrum are expected to be differentially magnified owing to the different sizes of the corresponding emitting region. Chromatic changes are expected to be observed in the continuum while the emission lines should be deformed as a function of the size, geometry and kinematics of the regions from which they originate. Microlensing of the emission lines has been reported only in a handful of systems so far. In this paper we search for microlensing deformations of the optical spectra of pairs of images in 17 lensed quasars with bolometric luminosities between 10(44.7) (47.4) erg/s and black hole masses 10(7.6) (9.8) M-circle dot. This sample is composed of 13 pairs of previously unpublished spectra and four pairs of spectra from literature. Our analysis is based on a simple spectral decomposition technique which allows us to isolate the microlensed fraction of the flux independently of a detailed modeling of the quasar emission lines. Using this technique, we detect microlensing of the continuum in 85% of the systems. Among them, 80% show microlensing of the broad emission lines. Focusing on the most common emission lines in our spectra (CIII right perpendicular and MgII) we detect microlensing of either the blue or the red wing, or of both wings with the same amplitude. This observation implies that the broad line region is not in general spherically symmetric. In addition, the frequent detection of microlensing of the blue and red wings independently but not simultaneously with a different amplitude, does not support existing microlensing simulations of a biconical outflow. Our analysis also provides the intrinsic flux ratio between the lensed images and the magnitude of the microlensing affecting the continuum. These two quantities are particularly relevant for the determination of the fraction of matter in clumpy form in galaxies and for the detection of dark matter substructures via the identification of flux ratio anomalies.
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页数:28
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共 148 条
[21]   DISCOVERY OF ENERGY-DEPENDENT X-RAY MICROLENSING IN Q2237+0305 [J].
Chen, Bin ;
Dai, Xinyu ;
Kochanek, C. S. ;
Chartas, George ;
Blackburne, Jeffrey A. ;
Kozllowski, Szymon .
ASTROPHYSICAL JOURNAL LETTERS, 2011, 740 (02)
[22]   Remarks concerning pair creation in strong magnetic fields [J].
Seminova, L ;
Leahy, D .
ASTRONOMY & ASTROPHYSICS, 2001, 373 (01) :272-280
[23]   Systematic effects in measurement of black hole masses by emission-line reverberation of active galactic nuclei: Eddington ratio and inclination [J].
Collin, S. ;
Kawaguchi, T. ;
Peterson, B. M. ;
Vestergaard, M. .
ASTRONOMY & ASTROPHYSICS, 2006, 456 (01) :75-90
[24]   COSMOGRAIL: the COSmological MOnitoring of GRAvItational Lenses IX. Time delays, lens dynamics and baryonic fraction in HE 0435-1223 [J].
Courbin, F. ;
Chantry, V. ;
Revaz, Y. ;
Sluse, D. ;
Faure, C. ;
Tewes, M. ;
Eulaers, E. ;
Koleva, M. ;
Asfandiyarov, I. ;
Dye, S. ;
Magain, P. ;
van Winckel, H. ;
Coles, J. ;
Saha, P. ;
Ibrahimov, M. ;
Meylan, G. .
ASTRONOMY & ASTROPHYSICS, 2011, 536
[25]   A method for spatial deconvolution of spectra [J].
Courbin, F ;
Magain, P ;
Kirkove, M ;
Sohy, S .
ASTROPHYSICAL JOURNAL, 2000, 529 (02) :1136-1144
[26]   Chandra observations of QSO 2237+0305 [J].
Dai, X ;
Chartas, G ;
Agol, E ;
Bautz, MW ;
Garmire, GP .
ASTROPHYSICAL JOURNAL, 2003, 589 (01) :100-110
[27]   THE SIZES OF THE X-RAY AND OPTICAL EMISSION REGIONS OF RXJ 1131-1231 [J].
Dai, X. ;
Kochanek, C. S. ;
Chartas, G. ;
Kozlowski, S. ;
Morgan, C. W. ;
Garmire, G. ;
Agol, E. .
ASTROPHYSICAL JOURNAL, 2010, 709 (01) :278-285
[28]   Direct detection of cold dark matter substructure [J].
Dalal, N ;
Kochanek, CS .
ASTROPHYSICAL JOURNAL, 2002, 572 (01) :25-33
[29]   On the geometry of broad emission region in quasars [J].
Decarli, R. ;
Labita, M. ;
Treves, A. ;
Falomo, R. .
MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2008, 387 (03) :1237-1247
[30]   DIVERSE KINEMATIC SIGNATURES FROM REVERBERATION MAPPING OF THE BROAD-LINE REGION IN AGNs [J].
Denney, K. D. ;
Peterson, B. M. ;
Pogge, R. W. ;
Adair, A. ;
Atlee, D. W. ;
Au-Yong, K. ;
Bentz, M. C. ;
Bird, J. C. ;
Brokofsky, D. J. ;
Chisholm, E. ;
Comins, M. L. ;
Dietrich, M. ;
Doroshenko, V. T. ;
Eastman, J. D. ;
Efimov, Y. S. ;
Ewald, S. ;
Ferbey, S. ;
Gaskell, C. M. ;
Hedrick, C. H. ;
Jackson, K. ;
Klimanov, S. A. ;
Klimek, E. S. ;
Kruse, A. K. ;
Laderoute, A. ;
Lamb, J. B. ;
Leighly, K. ;
Minezaki, T. ;
Nazarov, S. V. ;
Onken, C. A. ;
Petersen, E. A. ;
Peterson, P. ;
Poindexter, S. ;
Sakata, Y. ;
Schlesinger, K. J. ;
Sergeev, S. G. ;
Skolski, N. ;
Stieglitz, L. ;
Tobin, J. J. ;
Unterborn, C. ;
Vestergaard, M. ;
Watkins, A. E. ;
Watson, L. C. ;
Yoshii, Y. .
ASTROPHYSICAL JOURNAL LETTERS, 2009, 704 (02) :L80-L84