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Large Interferometer For Exoplanets (LIFE): IV. Ideal kernel-nulling array architectures for a space-based mid-infrared nulling interferometer

dc.contributor.authorHansen, Jonah
dc.contributor.authorIreland, Michael
dc.date.accessioned2026-01-19T03:37:23Z
dc.date.available2026-01-19T03:37:23Z
dc.date.issued2022
dc.date.updated2023-10-22T07:16:36Z
dc.description.abstractAims. Optical interferometry from space for the purpose of detecting and characterising exoplanets is seeing a revival, specifically from missions such as the proposed Large Interferometer For Exoplanets (LIFE). A default assumption since the design studies of Darwin and TPF-I has been that the Emma X-array configuration is the optimal architecture for this goal. Here, we examine whether new advances in the field of nulling interferometry, such as the concept of kernel-nulling, challenge this assumption. Methods. We develop a tool designed to derive the photon-limited signal-to-noise ratio of a large sample of simulated planets for different architecture configurations and beam combination schemes. We simulate four basic configurations: the double Bracewell/X-array, and three kernel-nullers with three, four, and five telescopes respectively. Results. We find that a configuration of five telescopes in a pentagonal shape, using a five-aperture kernel-nulling scheme, outperforms the X-array design in both search (finding more planets) and characterisation (obtaining better signal, faster) when the total collecting area is conserved. This is especially the case when trying to detect Earth twins (temperate, rocky planets in the habitable zone), showing a 23% yield increase over the X-array. On average, we find that a five-telescope design receives 1.2 times more signal than the X-array design. Conclusions. With the results of this simulation, we conclude that the Emma X-array configuration may not be the best choice of architecture for the upcoming LIFE mission, and that a five-telescope design utilising kernel-nulling concepts will likely provide better scientific return for the same collecting area, provided that technical solutions for the required achromatic phase shifts can be implemented.
dc.description.sponsorshipThis research was supported by the ANU Futures scheme and by the Australian Government through the Australian Research Council’s Discovery Projects funding scheme (project DP200102383).
dc.format.mimetypeapplication/pdfen_AU
dc.identifier.issn0004-6361
dc.identifier.urihttps://hdl.handle.net/1885/733804744
dc.language.isoen_AUen_AU
dc.provenanceOpen Access article, published by EDP Sciences, under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited. This article is published in open access under the Subscribe-to-Open model. Subscribe to A&A to support open access publication.
dc.publisherEDP Sciences
dc.rights© 2022 J. T. Hansen et al.
dc.rights.licenseCreative Commons Attribution License
dc.rights.urihttps://creativecommons.org/licenses/by/4.0
dc.sourceAstronomy and Astrophysics
dc.titleLarge Interferometer For Exoplanets (LIFE): IV. Ideal kernel-nulling array architectures for a space-based mid-infrared nulling interferometer
dc.typeJournal article
dcterms.accessRightsOpen Access
local.contributor.affiliationHansen, Jonah, OTH Other Departments, ANU
local.contributor.affiliationIreland, Michael, College of Science, ANU
local.contributor.authoruidHansen, Jonah, u6058440
local.contributor.authoruidIreland, Michael, u5544212
local.description.notesImported from ARIES
local.identifier.absfor510100 - Astronomical sciences
local.identifier.absseo280120 - Expanding knowledge in the physical sciences
local.identifier.ariespublicationa383154xPUB36099
local.identifier.citationvolume664
local.identifier.doi10.1051/0004-6361/202243107
local.identifier.scopusID2-s2.0-85137065155
local.type.statusPublished Version
publicationvolume.volumeNumber664

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