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Dive into the research topics where David S. Doelman is active.

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Featured researches published by David S. Doelman.


arXiv: Instrumentation and Methods for Astrophysics | 2018

Modeling coronagraphic extreme wavefront control systems for high contrast imaging in ground and space telescope missions

Jennifer Lumbres; Jared R. Males; Ewan S. Douglas; Laird M. Close; Kerri Cahoy; Ashley Carlton; Jim Clark; David S. Doelman; Lee D. Feinberg; Olivier Guyon; Justin Knight; Weston Marlow; Kelsey Miller; Katie M. Morzinski; Emiel H. Por; Alexander T. Rodack; Lauren Schatz; Frans Snik; Kyle Van Gorkom; Michael J. Wilby

The challenges of high contrast imaging (HCI) for detecting exoplanets for both ground and space applications can be met with extreme adaptive optics (ExAO), a high-order adaptive optics system that performs wavefront sensing (WFS) and correction at high speed. We describe 2 ExAO optical system designs, one each for ground- based telescopes and space-based missions, and examine them using the angular spectrum Fresnel propagation module within the Physical Optics Propagation in Python (POPPY) package. We present an end-to-end (E2E) simulation of the MagAO-X instrument, an ExAO system capable of delivering 6x10-5 visible-light raw contrast for static, noncommon path aberrations without atmosphere. We present an E2E simulation of a laser guidestar (LGS) companion spacecraft testbed demonstration, which uses a remote beacon to increase the signal available for WFS and control of the primary aperture segments of a future large space telescope, providing of order 10 factor improvement for relaxing observatory stability requirements.


arXiv: Instrumentation and Methods for Astrophysics | 2018

SCExAO, an instrument with a dual purpose: perform cutting-edge science and develop new technologies

Julien Lozi; Olivier Guyon; Nemanja Jovanovic; Sean B. Goebel; Prashant Pathak; Nour Skaf; Ananya Sahoo; Barnaby Norris; Frantz Martinache; Mamadou M'Diaye; Benjamin A. Mazin; A. B. Walter; Peter G. Tuthill; Tomoyuki Kudo; Hajime Kawahara; Takayuki Kotani; Michael J. Ireland; Nick Cvetojevic; Elsa Huby; Sylvestre Lacour; Sebastien Vievard; Tyler D. Groff; Jeffrey K. Chilcote; Jeremy Kasdin; Justin Knight; Yosuke Minowa; Christophe Clergeon; Naruhisa Takato; Motohide Tamura; Thayne Currie

The Subaru Coronagraphic Extreme Adaptive Optics (SCExAO) instrument is an extremely modular high- contrast instrument installed on the Subaru telescope in Hawaii. SCExAO has a dual purpose. Its position in the northern hemisphere on a 8-meter telescope makes it a prime instrument for the detection and characterization of exoplanets and stellar environments over a large portion of the sky. In addition, SCExAO’s unique design makes it the ideal instrument to test innovative technologies and algorithms quickly in a laboratory setup and subsequently deploy them on-sky. SCExAO benefits from a first stage of wavefront correction with the facility adaptive optics AO188, and splits the 600-2400 nm spectrum towards a variety of modules, in visible and near infrared, optimized for a large range of science cases. The integral field spectrograph CHARIS, with its J, H or K-band high-resolution mode or its broadband low-resolution mode, makes SCExAO a prime instrument for exoplanet detection and characterization. Here we report on the recent developments and scientific results of the SCExAO instrument. Recent upgrades were performed on a number of modules, like the visible polarimetric module VAMPIRES, the high-performance infrared coronagraphs, various wavefront control algorithms, as well as the real-time controller of AO188. The newest addition is the 20k-pixel Microwave Kinetic Inductance Detector (MKIDS) Exoplanet Camera (MEC) that will allow for previously unexplored science and technology developments. MEC, coupled with novel photon-counting speckle control, brings SCExAO closer to the final design of future high-contrast instruments optimized for Giant Segmented Mirror Telescopes (GSMTs).


arXiv: Instrumentation and Methods for Astrophysics | 2018

MagAO-X: project status and first laboratory results

Jared R. Males; Laird M. Close; Kelsey Miller; Lauren Schatz; Jennifer Lumbres; David S. Doelman; Frans Snik; Olivier Guyon; Justin Knight; Alexander T. Rodack; Katie M. Morzinski; Nemanja Jovanovic; Julien Lozi; Benjamin A. Mazin; Michael J. Ireland; Matthew A. Kenworthy; Christoph U. Keller; Kyle Van Gorkom; Joseph D. Long; Alexander D. Hedglen; Maggie Y. Kautz; Christopher Bohlman; Ewan S. Douglas; Katherine B. Follette; O. Durney; Victor Gasho; Phil Hinz; Madison Jean; J. Noenickx; Dan Alfred

MagAO-X is an entirely new extreme adaptive optics system for the Magellan Clay 6.5 m telescope, funded by the NSF MRI program starting in Sep 2016. The key science goal of MagAO-X is high-contrast imaging of accreting protoplanets at Hα. With 2040 actuators operating at up to 3630 Hz, MagAO-X will deliver high Strehls (> 70%), high resolution (19 mas), and high contrast (< 1 × 10-4 ) at Hα (656 nm). We present an overview of the MagAO-X system, review the system design, and discuss the current project status.


Adaptive Optics Systems VI | 2018

High Contrast Imaging for Python (HCIPy): an open-source adaptive optics and coronagraph simulator

Emiel H. Por; Sebastiaan Y. Haffert; Vikram Mark Radhakrishnan; David S. Doelman; Maaike van Kooten; Steven P. Bos

HCIPy is a package written in Python for simulating the interplay between wavefront control and coronagraphic systems. By defining an element which merges values/coefficients with its sampling grid/modal basis into a single object called Field, this minimizes errors in writing the code and makes it clearer to read. HCIPy provides a monochromatic Wavefront and defines a Propagator that acts as the transformation between two wavefronts. In this way a Propagator acts as any physical part of the optical system, be it a piece of free space, a thin complex apodizer or a microlens array. HCIPy contains Fraunhofer and Fresnel propagators through free space. It includes an implementation of a thin complex apodizer, which can modify the phase and/or amplitude of a wavefront, and forms the basis for more complicated optical elements. Included in HCIPy are wavefront errors (modal, power spectra), complex apertures (VLT, Keck or Subaru pupil), coronagraphs (Lyot, vortex or apodizing phase plate coronagraph), deformable mirrors, wavefront sensors (Shack-Hartmann, Pyramid, Zernike or phase-diversity wavefront sensor) and multi-layer atmospheric models including scintillation). HCIPy aims to provide an easy-to-use, modular framework for wavefront control and coronagraphy on current and future telescopes, enabling rapid prototyping of the full high-contrast imaging system. Adaptive optics and coronagraphic systems can be easily extended to include more realistic physics. The package includes a complete documentation of all classes and functions, and is available as open-source software.


arXiv: Instrumentation and Methods for Astrophysics | 2018

Review of high-contrast imaging systems for current and future ground-based and space-based telescopes: Part II. Common path wavefront sensing/control and coherent differential imaging

Nemanja Jovanovic; Olivier Guyon; Mamadou N'Diaye; Raphaël Galicher; Dan Sirbu; Matthew A. Kenworthy; Marie Ygouf; Pierre Baudoz; Jonas Kühn; Elsa Huby; Michael J. Wilby; Emiel H. Por; Sebastiaan Y. Haffert; Christoph U. Keller; Frans Snik; Kelsey Miller; James K. Wallace; Mathilde Beaulieu; Eric Cady; J. B. Jewell; Johan Mazoyer; Olivier Absil; Garreth Ruane; Laurent Pueyo; Michael Bottom; Brunella Carlomagno; Alexis Carlotti; David S. Doelman; Kevin Fogarty; Justin Knight

The Optimal Optical Coronagraph (OOC) Workshop held at the Lorentz Center in September 2017 in Leiden, the Netherlands, gathered a diverse group of 25 researchers working on exoplanet instrumentation to stimulate the emergence and sharing of new ideas. In this second installment of a series of three papers summarizing the outcomes of the OOC workshop, we present an overview of common path wavefront sensing/control and Coherent Differential Imaging techniques, highlight the latest results, and expose their relative strengths and weaknesses. We layout critical milestones for the field with the aim of enhancing future ground/space based high contrast imaging platforms. Techniques like these will help to bridge the daunting contrast gap required to image a terrestrial planet in the zone where it can retain liquid water, in reflected light around a G type star from space.


arXiv: Instrumentation and Methods for Astrophysics | 2018

Focal plane wavefront sensing and control strategies for high-contrast imaging on the MagAO-X instrument

Kelsey Miller; Jared R. Males; Olivier Guyon; Laird M. Close; David S. Doelman; Frans Snik; Emiel H. Por; Michael J. Wilby; Chris Bohlman; Jennifer Lumbres; Kyle Van Gorkom; Maggie Y. Kautz; Alexander T. Rodack; Justin Knight; Nemanja Jovanovic; Katie M. Morzinski; Lauren Schatz

The Magellan extreme adaptive optics (MagAO-X) instrument is a new extreme adaptive optics (ExAO) system designed for operation in the visible to near-IR which will deliver high contrast-imaging capabilities. The main AO system will be driven by a pyramid wavefront sensor (PyWFS); however, to mitigate the impact of quasi-static and non-common path (NCP) aberrations, focal plane wavefront sensing (FPWFS) in the form of low-order wavefront sensing (LOWFS) and spatial linear dark field control (LDFC) will be employed behind a vector apodizing phase plate (vAPP) coronagraph using rejected starlight at an intermediate focal plane. These techniques will allow for continuous high-contrast imaging performance at the raw contrast level delivered by the vAPP coronagraph ( 6 x 10-5). We present simulation results for LOWFS and spatial LDFC with a vAPP coronagraph, as well as laboratory results for both algorithms implemented with a vAPP coronagraph at the University of Arizona Extreme Wavefront Control Lab.


arXiv: Instrumentation and Methods for Astrophysics | 2018

Review of high-contrast imaging systems for current and future ground-based and space-based telescopes III: technology opportunities and pathways

Frans Snik; Olivier Absil; Pierre Baudoz; Brunella Carlomagno; Raphaël Galicher; Mathilde Beaulieu; Eric Cady; Alexis Carlotti; David S. Doelman; A. J. Eldorado Riggs; Kevin Fogarty; Sebastiaan Y. Haffert; Elsa Huby; J. B. Jewell; Nemanja Jovanovic; Christoph U. Keller; Matthew A. Kenworthy; Justin Knight; Jonas Kühn; Johan Mazoyer; Kelsey Miller; Mamadou N'Diaye; Emiel H. Por; Laurent Pueyo; Garreth Ruane; Dan Sirbu; James K. Wallace; Michael J. Wilby; Marie Ygouf; Olivier Guyon

The Optimal Optical CoronagraphWorkshop at the Lorentz Center in September 2017 in Leiden, the Netherlands gathered a diverse group of 30 researchers working on exoplanet instrumentation to stimulate the emergence and sharing of new ideas. This contribution is the final part of a series of three papers summarizing the outcomes of the workshop, and presents an overview of novel optical technologies and systems that are implemented or considered for high-contrast imaging instruments on both ground-based and space telescopes. The overall objective of high contrast instruments is to provide direct observations and characterizations of exoplanets at contrast levels as extreme as 10-10. We list shortcomings of current technologies, and identify opportunities and development paths for new technologies that enable quantum leaps in performance. Specifically, we discuss the design and manufacturing of key components like advanced deformable mirrors and coronagraphic optics, and their amalgamation in adaptive coronagraph systems. Moreover, we discuss highly integrated system designs that combine contrast-enhancing techniques and characterization techniques (like high-resolution spectroscopy) while minimizing the overall complexity. Finally, we explore extreme implementations using all-photonics solutions for ground-based telescopes and dedicated huge apertures for space telescopes.


arXiv: Instrumentation and Methods for Astrophysics | 2018

Multiplexed holographic aperture masking with liquid-crystal geometric phase masks

Peter G. Tuthill; Barnaby Norris; Christoph U. Keller; Emiel H. Por; David S. Doelman; Frans Snik; Michael J. Escuti; Michael J. Wilby

Sparse Aperture Masking (SAM) allows for high-contrast imaging at small inner working angles, however the performance is limited by the small throughput and the number of baselines. We present the concept and first lab results of Holographic Aperture Masking (HAM) with extreme liquid-crystal geometric phase patterns. We multiplex subapertures using holographic techniques to combine the same subaperture in multiple non-redundant PSFs in combination with a non-interferometric reference spot. This way arbitrary subaperture combinations and PSF configurations can be realized, giving HAM more uv-coverage, better throughput and improved calibration as compared to SAM, at the cost of detector space.


Advances in Optical and Mechanical Technologies for Telescopes and Instrumentation III | 2018

Fully broadband vAPP coronagraphs enabling polarimetric high contrast imaging

Steven P. Bos; David S. Doelman; Jos de Boer; Emiel H. Por; Barnaby Norris; Michael J. Escuti; F. Snik

We present designs for fully achromatic vector Apodizing Phase Plate (vAPP) coronagraphs, that implement low polarization leakage solutions and achromatic beam-splitting, enabling observations in broadband filters. The vAPP is a pupil plane optic, inducing the phase through the inherently achromatic geometric phase. We discuss various implementations of the broadband vAPP and set requirements on all the components of the broadband vAPP coronagraph to ensure that the leakage terms do not limit a raw contrast of 10-5. Furthermore, we discuss superachromatic QWPs based of liquid crystals or quartz/MgF2 combinations, and several polarizer choices. As the implementation of the (broadband) vAPP coronagraph is fully based on polarization techniques, it can easily be extended to furnish polarimetry by adding another QWP before the coronagraph optic, which further enhances the contrast between the star and a polarized companion in reflected light. We outline several polarimetric vAPP system designs that could be easily implemented in existing instruments, e.g. SPHERE and SCExAO.


arXiv: Instrumentation and Methods for Astrophysics | 2017

Patterned liquid-crystal optics for broadband coronagraphy and wavefront sensing

David S. Doelman; Frans Snik; Nathaniel Z. Warriner; Michael J. Escuti

The direct-write technology for liquid-crystal patterns allows for manufacturing of extreme geometric phase patterned coronagraphs that are inherently broadband, e.g. the vector Apodizing Phase Plate (vAPP). We present on-sky data of a double-grating vAPP operating from 2-5 μm with a 360-degree dark hole and a decreased leakage term of ∼ 10−4 . We report a new liquid-crystal design used in a grating-vAPP for SCExAO that operates from 1-2.5μm. Furthermore, we present wavelength-selective vAPPs that work at specific wavelength ranges and transmit light unapodized at other wavelengths. Lastly, we present geometric phase patterns for advanced implementations of WFS (e.g. Zernike-type) that are enabled only by this liquid-crystal technology.

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