MOA-2022-BLG-033Lb, KMT-2023-BLG-0119Lb, and KMT-2023-BLG-1896Lb: Three low mass-ratio microlensing planets detected through dip signals
Cheongho Han, Ian A. Bond, Youn Kil Jung, Michael D. Albrow, Sun-Ju, Chung, Andrew Gould, Kyu-Ha Hwang, Chung-Uk Lee, Yoon-Hyun Ryu, Yossi, Shvartzvald, In-Gu Shin, Jennifer C. Yee, Hongjing Yang, Weicheng Zang,, Sang-Mok Cha, Doeon Kim, Dong-Jin Kim, Seung-Lee Kim, Dong-Joo Lee

TL;DR
This study reports the detection of three low-mass-ratio exoplanets via microlensing anomalies, providing detailed modeling and Bayesian analysis to estimate their physical properties and host star characteristics.
Contribution
The paper presents the discovery and detailed modeling of three low-mass-ratio microlensing planets, including their physical parameters and host star types, using anomaly analysis and Bayesian methods.
Findings
All signals originate from planetary companions with very low mass ratios.
The anomalies are caused by the source passing through negative deviation regions behind the central caustic.
Estimated planetary masses range from 12 to 16 Earth masses, orbiting M and K-type stars.
Abstract
We examined the anomalies in the light curves of the lensing events MOA-2022-BLG-033, KMT-2023-BLG-0119, and KMT-2023-BLG-1896. We conducted detailed modeling of the light curves to uncover the nature of the anomalies. This modeling revealed that all signals originated from planetary companions to the primary lens. The planet-to-host mass ratios are very low: for MOA-2022-BLG-033, for KMT-2023-BLG-0119, and for KMT-2023-BLG-1896. The anomalies occurred as the source passed through the negative deviation region behind the central caustic along the planet-host axis. The solutions are subject to a common inner-outer degeneracy, resulting in variations in estimating the projected planet-host separation. For KMT-2023-BLG-1896, although the planetary scenario provides the best explanation of the anomaly, the binary…
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Taxonomy
TopicsAtmospheric Ozone and Climate · Calibration and Measurement Techniques · Stellar, planetary, and galactic studies
