No Conclusive Evidence for Transits of Proxima b in MOST Photometry

dc.contributor.authorKipping, David
dc.contributor.authorCameron, Chris
dc.contributor.authorHartman, Joel
dc.contributor.authorDavenport, James
dc.contributor.authorMatthews, Jaymie
dc.contributor.authorSasselov, Dimitar
dc.contributor.authorRowe, Jason
dc.contributor.authorSiverd, Robert
dc.contributor.authorChen, Jingjing
dc.contributor.authorSandford, Emily
dc.contributor.authorBakos, Gaspar
dc.contributor.authorJordan, Andras
dc.contributor.authorBayliss, Daniel
dc.contributor.authorHenning, Thomas
dc.contributor.authorMancini, Luigi
dc.contributor.authorPenev, Kaloyan
dc.contributor.authorCsubry, Zoltan
dc.contributor.authorBhatti, Waqas
dc.contributor.authorBento, Joao
dc.contributor.authorGuenther, David
dc.contributor.authorKuschnig, Rainer
dc.contributor.authorMoffat, Anthony
dc.contributor.authorRucinski, Slavek
dc.contributor.authorWeiss, Werner
dc.date.accessioned2024-12-06T23:39:36Z
dc.date.available2024-12-06T23:39:36Z
dc.date.issued2017
dc.date.issued2017
dc.date.issued2017
dc.description.abstractThe analysis of Proxima Centauri's radial velocities recently led Anglada-Escude et al. to claim the presence of a low-mass planet orbiting the Sun's nearest star once every 11.2 days. Although the a priori probability that Proxima b transits its parent star is just 1.5%, the potential impact of such a discovery would be considerable. Independent of recent radial velocity efforts, we observed Proxima Centauri for 12.5 days in 2014 and 31 days in 2015 with the Microwave and Oscillations of Stars space telescope. We report here that we cannot make a compelling case that Proxima b transits in our precise photometric time series. Imposing an informative prior on the period and phase, we do detect a candidate signal with the expected depth. However, perturbing the phase prior across 100 evenly spaced intervals reveals one strong false positive and one weaker instance. We estimate a false-positive rate of at least a few percent and a much higher false-negative rate of 20%-40%, likely caused by the very high flare rate of Proxima Centauri. Comparing our candidate signal to HATSouth ground-based photometry reveals that the signal is somewhat, but not conclusively, disfavored (1 sigma-2 sigma), leading us to argue that the signal is most likely spurious. We expect that infrared photometric follow-up could more conclusively test the existence of this candidate signal, owing to the suppression of flare activity and the impressive infrared brightness of the parent star.
dc.identifiercitekey: Kipping2017
dc.identifier.doi10.3847/1538-3881/153/3/93
dc.identifier.issn0004-6256
dc.identifier.othercbu:218
dc.identifier.urihttps://hdl.handle.net/20.500.14639/315
dc.rights.holderCC-BY
dc.subjectatmosphere
dc.subjectcentauri
dc.subjectefficient
dc.subjectfield
dc.subjecthatsouth
dc.subjectm dwarfs
dc.subjectplanetary systems
dc.subjectplanets
dc.subjectsearch
dc.subjectstar
dc.subjectstars: individual (Proxima Centauri)
dc.subjectsuper-earth
dc.subjecttechniques: photometric
dc.subjectSchool of Science and Technology
dc.subject.disciplineMathematics, Physics and Geology
dc.titleNo Conclusive Evidence for Transits of Proxima b in MOST Photometry
dc.typeText
dc.typeperiodical
dc.typeacademic journal
dc.typeJournal Article
dc.typePRE-PRINT
oaire.citation.issue3
oaire.citation.titleAstron. J.
oaire.citation.volume153

Files

Original bundle

Now showing 1 - 1 of 1
Loading...
Thumbnail Image
Name:
cbu_218_PDF.pdf
Size:
8.61 MB
Format:
Adobe Portable Document Format

Collections