Efficient detection and characterization of exoplanets within the diffraction limit: nulling with a mode-selective photonic lantern
arXiv:2209.07644 · doi:10.3847/1538-4357/ac9284
Abstract
Coronagraphs allow for faint off-axis exoplanets to be observed, but are limited to angular separations greater than a few beam widths. Accessing closer-in separations would greatly increase the expected number of detectable planets, which scales inversely with the inner working angle. The Vortex Fiber Nuller (VFN) is an instrument concept designed to characterize exoplanets within a single beam-width. It requires few optical elements and is compatible with many coronagraph designs as a complementary characterization tool. However, the peak throughput for planet light is limited to about 20%, and the measurement places poor constraints on the planet location and flux ratio. We propose to augment the VFN design by replacing its single-mode fiber with a six-port mode-selective photonic lantern, retaining the original functionality while providing several additional ports that reject starlight but couple planet light. We show that the photonic lantern can also be used as a nuller without a vortex. We present monochromatic simulations characterizing the response of the Photonic Lantern Nuller (PLN) to astrophysical signals and wavefront errors, and show that combining exoplanet flux from the nulled ports significantly increases the overall throughput of the instrument. We show using synthetically generated data that the PLN detects exoplanets more effectively than the VFN. Furthermore, with the PLN, the exoplanet can be partially localized, and its flux ratio constrained. The PLN has the potential to be a powerful characterization tool complementary to traditional coronagraphs in future high-contrast instruments.
15 pages, 12 figures
References in corpus (8)
- Array Programming with NumPy
- Photonic Lantern
- Detection and Bulk Properties of the HR 8799 Planets with High Resolution Spectroscopy
- Astrophotonic Spectrographs
- Enhancing stellar spectroscopy with extreme adaptive optics and photonics
- Focal-plane wavefront sensing with photonic lanterns I: theoretical framework
- Phase II of the Keck Planet Imager and Characterizer: system-level laboratory characterization and preliminary on-sky commissioning
- Design considerations of photonic lanterns for diffraction-limited spectrometry
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- Planet Search with the Keck/NIRC2 Vortex Coronagraph in Ms-band for Vega
- On-sky Demonstration of Subdiffraction-limited Astronomical Measurement Using a Photonic Lantern
- Astrophotonics -- current capabilities and the road ahead
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