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Olga Kuhn

Publications and source records attributed to Olga Kuhn.

6 recordsLinked to original sources

Laser-based metrology systems vs wavefront sensing techniques: a comparative overview between the Large Binocular Telescope and the Vera C. Rubin Observatory for the telescope alignment and collimation tracking

This work presents a comparative overview of the collimation and alignment strategies employed by two leading 8m-class facilities: the Large Binocular Telescope (LBT) and the Vera C. Rubin Observatory. While both telescopes share a challenging fast f-number of approximately f/1.2 (considering the LBT in its Prime Focus configuration), they have adopted reciprocal architectures for the initial optical alignment strategy and for maintaining collimation during the night. As an initial alignment strategy, the LBT relies on a Wavefront Sensing technique called Focal Plane Image Analysis. Conversely, the Vera C. Rubin Observatory baseline foresees the usage of a Laser Tracker system to establish the initial optical states. The strategies for preserving the optical alignment and maintaining the collimation against gravitational flexure and thermal drift during observations are instead reversed. Besides the use of open-loop corrections based on Look-Up Tables, common on both telescopes, the LBT utilizes a laser-based Telescope Metrology System to monitor the relative position of optics in real-time, applying the corrections between the exposures. In contrast, the Rubin Observatory employs a Curvature Wavefront Sensing technique, using dedicated detectors at the four corners of the focal plane. Rather than identifying a best strategy, this work aims to synthesize the strengths, limitations, and operational trade-offs of these complementary approaches, from the perspective of the next generation of Extremely Large Telescopes and their instruments.

astro-ph.IM

The instrumentation program at the Large Binocular Telescope Observatory in 2024

The Large Binocular Telescope, with its expansive collecting area, angular resolving power, and advanced optical design, provides a robust platform for development and operation of advanced instrumentation for astronomical research. The LBT currently hosts a mature suite of instruments for spectroscopy and imaging at optical through mid-infrared wavelengths, supported by sophisticated adaptive optics systems. This contribution summarizes the current state of instrumentation, including upgrades to existing instruments and commissioning of second generation instruments now in progress. The LBT is soliciting proposals for next generation instrument concepts, with participation open to consortium members and others interested in participation in the Observatory.

astro-ph.IM

Spectroscopic Links Among Giant Planet Irregular Satellites and Trojans

We collect near-infrared spectra ($\sim0.75-2.55\ μm$) of four Jovian irregular satellites and visible spectra ($\sim0.32-1.00\ μm$) of two Jovian irregular satellites, two Uranian irregular satellites, and four Neptune Trojans. We find close similarities between observed Jovian irregular satellites and previously characterized Jovian Trojans. However, irregular satellites' unique collisional histories complicate comparisons to other groups. Laboratory study of CM and CI chondrites show that grain size and regolith packing conditions strongly affect spectra of dark, carbonaceous materials. We hypothesize that different activity histories of these objects, which may have originally contained volatile ices that subsequently sublimated, could cause differences in regolith grain-size or packing properties and therefore drive spectral variation. The Uranian satellites Sycorax and Caliban appear similar to TNOs. However, we detect a feature near 0.7 $μm$ on Sycorax, suggesting the presence of hydrated materials. While the sample of Neptune Trojans have more neutral spectra than the Uranian satellites we observe, they remain consistent with the broad color distribution of the Kuiper belt. We detect a possible feature near 0.65-0.70 $μm$ on Neptune Trojan 2006 RJ103, suggesting that hydrated material may also be present in this population. Characterizing hydrated materials in the outer solar system may provide critical context regarding the origins of hydrated CI and CM chondrite meteorites. We discuss how the hydration state(s) of the irregular satellites constrains the thermal histories of the interiors of their parent bodies, which may have formed among the primordial Kuiper belt.

astro-ph.EP

Lunar-like silicate material forms the Earth quasisatellite (469219) 2016 HO3 Kamo`oalewa

Little is known about Earth quasi-satellites, a class of near-Earth small solar system bodies that orbit the sun but remain close to the Earth, because they are faint and difficult to observe. Here we use the Large Binocular Telescope (LBT) and the Lowell Discovery Telescope (LDT) to conduct a comprehensive physical characterization of quasi-satellite (469219) Kamo`oalewa and assess its affinity with other groups of near-Earth objects. We find that (469219) Kamo`oalewa rotates with a period of 28.3 (+1.8/-1.3) minutes and displays a reddened reflectance spectrum from 0.4-2.2 microns. This spectrum is indicative of a silicate-based composition, but with reddening beyond what is typically seen amongst asteroids in the inner solar system. We compare the spectrum to those of several material analogs and conclude that the best match is with lunar-like silicates. This interpretation implies extensive space weathering and raises the prospect that Kamo`oalewa could comprise lunar material.

astro-ph.EP

Current Status of the Facility Instrumentation Suite at The Large Binocular Telescope Observatory

We review the current status of the facility instrumentation for the Large Binocular Telescope (LBT). The LBT has 2x 8.4m primary mirrors on a single mount with an effective collecting area of 11.8m or 23m when interferometrically combined. The facility instruments are: 1) the Large Binocular Cameras (LBCs), each with a 23'x25' field of view (FOV). The blue and red optimized optical LBCs are mounted at the prime focus of the left and right primary mirrors, respectively. The filter suite of the two LBCs covers 0.3-1.1μm, including the new TiO (0.78μm) and CN (0.82μm) filters; 2) the Multi-Object Double Spectrograph (MODS), two identical optical spectrographs each mounted at a straight through f/15 Gregorian mount. MODS-1 & -2 can do imaging with Sloan filters and medium resolution (R~2000) spectroscopy, each with 24 interchangeable masks (multi-object or longslit) over a 6'x6' FOV. Each MODS is capable of blue (0.32-0.6μm) and red (0.5-1.05μm) wavelength only coverage or, using a dichroic, 0.32-1.05μm coverage; and 3) the two LBT Utility Camera in the Infrared instruments (LUCIs), each mounted at a bent-front Gregorian f/15 port. LUCI-1 & 2 are designed for seeing-limited (4'x4'FOV) and AO (0.5'x0.5' FOV) imaging & spectroscopy over 0.95-2.5μm with spectroscopic resolutions of R~400-11000, including 32 interchangeable cryogenically cooled masks. All facility instruments are on the LBT and, for the first time, have been on-sky for science. We also report on the first science use of "mixed-mode" (differently paired instruments). While both primary mirrors reside on a single fixed mount, they are capable of operating independently within a defined "co-pointing" limit. This provides users with the additional capability to independently dither each mirror or center observations on two different sets of spatial coordinates within this limit. (ABRIDGED)

astro-ph.IM

A search for signatures of quasar evolution: Comparison of the shapes of the rest-frame optical/UV continua of quasars at z>3 and z~0.1

For 15 bright (V<17.5), high redshift (z>3) quasars, we have obtained IR spectra and photometry, and optical spectrophotometry and photometry, which we use to construct their rest-frame 1285-5100 AA spectral energy distributions (SEDs). High resolution spectroscopy for 7 and L' detections of 4 extend their SEDs shortwards of Ly_alpha or redwards of 7500 AA. The average luminosities within a set of narrow, line-free, windows are computed. Power law fits to those from 1285 to 5100 AA, but excluding the 2000-4000 AA region of the FeII+BaC `small bump', adequately characterize the continuum shapes of most of the objects and yield optical/UV spectral indices (aouv: fnu ~ nu^{aouv}). To look for signs of evolution, we compare the distribution of the aouv for the z>3 quasars with that for a set of 27 z~0.1 quasars which are matched to the high redshift(z) ones in evolved luminosity. The mean (median) aouv for the high and low z samples are -0.32(-0.29) and -0.38(-0.40), respectively. Neither the distributions nor means differ significantly. The distributions of aouv for both samples span a wide range however, with Delta~1, which could be understood as the result of both a diversity in the emitted continua themselves and in the amounts of intrinsic extinction undergone. A clear difference between the high and low z samples occurs in the region of `small bump'. The power law fit residuals for the low z sample show a systematic excess from 2200-3000 AA ; this feature is weak or absent in the high z sample. Further study is needed, but the `small bump' evolution could reflect differences in iron abundance or FeII energy source, or alternatively, an intrinsic turnover in the continuum itself which is present at low but not at high z. (Abridged)

astro-ph