Photometric, Astrometric and Polarimetric observations of gravitational microlensing events
arXiv:1409.2653 · doi:10.1093/mnras/stu1875
Abstract
The gravitational microlensing as a unique astrophysical tool can be used for studying the atmosphere of stars thousands of parsec far from us. This capability results from the bending of light rays in the gravitational field of a lens which can magnify the light of a background source star during the lensing. Moreover, one of properties of this light bending is that the circular symmetry of the source is broken by producing distorted images at either side of the lens position. This property makes the possibility of the observation of the polarization and the light centroid shift of images. Assigning vectors for these two parameters, they are perpendicular to each other in the simple and binary microlensing events, except in the fold singularities. In this work, we investigate the advantages of polarimetric and astrometric observations during microlensing events for (i) studying the surface of the source star and spots on it and (ii) determining the trajectory of source stars with respect to the lens. Finally we analyze the largest sample of microlensing events from the OGLE catalog and show that for almost ~ 4.3 per cent of events in the direction of the Galactic bulge, the polarization signals with large telescopes would be observable.
Accepted for publication by MNRAS
References in corpus (5)
- Binary microlensing event OGLE-2009-BLG-020 gives a verifiable mass, distance and orbit predictions
- OGLE-III Microlensing Events and the Structure of the Galactic Bulge
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Cited by in corpus (11)
- Gravitational Microlensing I: A Unique Astrophysical Tool
- Detecting stellar spots through polarimetry observations of microlensing events in caustic-crossing
- Detecting isolated stellar-mass black holes by the Roman telescope
- Astrometric microlensing
- Parallax and orbital effects in astrometric microlensing with binary sources
- Numerically studying the degeneracy problem in extreme finite-source microlensing events
- Polarimetric microlensing of circumstellar disks
- Stellar rotation effects in polarimetric microlensing
- Never bet against Einstein
- Identifying low-amplitude pulsating stars through microlensing observations
- Measuring Limb Darkening of Stars in high magnification Microlensing Events by the Finite Element Method