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Spatially resolved microlensing timescale distributions across the Galactic bulge with the VVV survey

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arxiv 2312.11667 v2 pith:V5AHTSUW submitted 2023-12-18 astro-ph.GA

classification astro-ph.GA
keywords circdistributionsfieldstimescalebulgemicrolensingeventsspatially-resolved
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

We analyze 1602 microlensing events found in the VISTA Variables in the Via Lactea (VVV) near-infrared (NIR) survey data. We obtain spatially-resolved, efficiency-corrected timescale distributions across the Galactic bulge ($|\ell|<10^\circ,$ $|b|<5^\circ$), using a Bayesian hierarchical model. Spatially-resolved peaks and means of the timescale distributions, along with their marginal distributions in strips of longitude and latitude, are in agreement at a 1$\sigma$ level with predictions based on the Besan\c{c}on model of the Galaxy. We find that the event timescales in the central bulge fields ($|\ell| < 5^\circ$) are on average shorter than the non-central ($|\ell| > 5^\circ$) fields, with the average peak of the lognormal timescale distribution at 23.6 $\pm$ 1.9 days for the central fields and 29.0 $\pm$ 3.0 days for the non-central fields. Our ability to probe the structure of the Bulge with this sample of NIR microlensing events is limited by the VVV survey's sparse cadence and relatively small number of detected microlensing events compared to dedicated optical surveys. Looking forward to future surveys, we investigate the capability of the Roman telescope to detect spatially-resolved asymmetries in the timescale distributions. We propose two pairs of Roman fields, centred on ($\ell = \pm 9,5^\circ$, $b=-0.125^\circ$) and ($\ell = -5^\circ$, $b=\pm 1.375^\circ$) as good targets to measure the asymmetry in longitude and latitude, respectively.

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  1. Assessing the Impact of Binary Systems on Microlensing Using SPISEA and PopSyCLE Population Simulations

    astro-ph.SR 2025-01 conditional novelty 6.0 of 10

    Adding binary and triple systems to microlensing population simulations predicts that 55% of OGLE-like events involve a multiple system, most of which masquerade as single-star events.

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