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dc.contributor.authorNorris, Barnaby
dc.contributor.authorLeon-Saval, Sergio G.
dc.contributor.authorWei, Jin
dc.contributor.authorBetters, Christopher H.
dc.contributor.authorTaras, Adam
dc.contributor.authorLin, Jonathan
dc.contributor.authorXin, Yinzi
dc.contributor.authorKim, Yoo Jung
dc.contributor.authorFitzgerald, Michael
dc.contributor.authorSallum, Steph
dc.contributor.authorSengupta, Aditya
dc.contributor.authorGatkine, Pradip
dc.contributor.authorJovanovic, Nemanja
dc.contributor.authorMawet, Dimitri
dc.contributor.authorLozi, Julien
dc.contributor.authorVievard, Sebastian
dc.contributor.authorDeo, Vincent
dc.contributor.authorLallement, Manon
dc.contributor.authorLevinstein, Daniel
dc.contributor.authorGuyon, Olivier
dc.date.accessioned2025-12-09T23:55:00Z
dc.date.available2025-12-09T23:55:00Z
dc.date.issued2024en
dc.identifier.citationBarnaby R. M. Norris, Sergio G. Leon-Saval, Jin Wei, Christopher H. Betters, Adam Taras, Jonathan Lin, Yinzi Xin, Yoo Jung Kim, Michael Fitzgerald, Steph Sallum, Aditya Sengupta, Pradip Gatkine, Nemanja Jovanovic, Dimitri Mawet, Julien Lozi, Sebastian Vievard, Vincent Deo, Manon Lallement, Daniel Levinstein, and Olivier Guyon "The photonic lantern wavefront sensor and imager: focal plane wavefront sensing and optimal imaging at the diffraction limit and beyond", Proc. SPIE 13097, Adaptive Optics Systems IX, 130971I (27 August 2024); https://doi.org/10.1117/12.3019643
dc.identifier.urihttps://hdl.handle.net/2123/34596
dc.description.abstractThe use of a photonic lantern as focal plane wavefront sensor has seen recent widespread interest - it can remove non-common-path aberrations, accurately sense low-wind-effect and petal modes, and provide wavelength resolution. It encodes both the PSFs phase and amplitude into the intensities of its single-mode-fibre outputs, from which the wavefront is reconstructed (by neural network or other algorithm). It also offers exciting potential as an imager to resolve structure at and beyond the telescope diffraction limit, filling in a coronagraphs IWA blind spot. This can utilise interferometric techniques, or an oversampled photonic lantern, having sufficient measurement dimensions that the amplitude, phase and spatial coherence of the science field can be entirely constrained by the output fluxes, and so the wavefront-error-induced components can be disambiguated from the source spatial structure. Other applications such as fibre nulling, optimal single-mode fibre injection, spectroastrometry, and others are also in development. Here, a brief overview of the photonic lantern sensor and these various applications will be given, along with key references.en
dc.language.isoenen
dc.publisherSociety of Photo‑Optical Instrumentation Engineers (SPIE)en
dc.relation.ispartofSPIE Astronomical Telescopes + Instrumentationen
dc.rightsCopyright All Rights Reserveden
dc.titleThe photonic lantern wavefront sensor and imager: focal plane wavefront sensing and optimal imaging at the diffraction limit and beyonden
dc.typeConference paperen
dc.subject.asrc510102en
dc.identifier.doi10.1117/12.3019643
dc.type.pubtypeAuthor accepted manuscripten
dc.relation.arcFT240100614
dc.relation.arcDE210100953
dc.rights.otherCopyright 2024 Society of Photo‑Optical Instrumentation Engineers (SPIE). One print or electronic copy may be made for personal use only. Systematic reproduction and distribution, duplication of any material in this publication for a fee or for commercial purposes, and modification of the contents of the publication are prohibited.en
usyd.facultySeS faculties schools::Faculty of Science::School of Physicsen
workflow.metadata.onlyNoen


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