Showing posts with label Extremely Large Telescopes. Show all posts
Showing posts with label Extremely Large Telescopes. Show all posts

Thursday, July 28, 2016

Observing Exoplanetary Atmospheres With Extremely Large Telescopes

Exoplanet Atmospheres and Giant Ground-Based Telescopes

Author:

Crosfield

Abstract:

The study of extrasolar planets has rapidly expanded to encompass the search for new planets, measurements of sizes and masses, models of planetary interiors, planetary demographics and occurrence frequencies, the characterization of planetary orbits and dynamics, and studies of these worlds' complex atmospheres. Our insights into exoplanets dramatically advance whenever improved tools and techniques become available, and surely the largest tools now being planned are the optical/infrared Extremely Large Telescopes (ELTs). Two themes summarize the advantages of atmospheric studies with the ELTs: high angular resolution when operating at the diffraction limit and high spectral resolution enabled by the unprecedented collecting area of these large telescopes. This brief review describes new opportunities afforded by the ELTs to study the composition, structure, dynamics, and evolution of these planets' atmospheres, while specifically focusing on some of the most compelling atmospheric science cases for four qualitatively different planet populations: highly irradiated gas giants, young, hot giant planets, old, cold gas giants, and small planets and Earth analogs.

Tuesday, February 17, 2015

Direct Imaging of Exoplanets With Extremely Large Telescopes

Direct Imaging of Exoplanets Without Background Subtraction: Implications for ELTs

Author:

Frazin

Abstract:

The ultra-high contrast capability required to form images of other solar systems is arguably the highest-profile challenge in astronomy today. The current high-contrast imaging efforts all require background subtraction to separate the planetary image from the image of the host star. Background estimation is difficult due to the presence of non-common path aberrations (NCPAs) that change with time. The only major source of information that is not being utilized by current efforts is the random encoding of the planetary image and the NCPAs by the atmosphere on millisecond time-scales. Here, a method that utilizes this information in order to avoid background subtraction altogether is proposed. This new paradigm will allow simultaneous estimation of the time-dependent NCPAs and the planetary image via rigorous statistical inference procedures. These procedures are fully compatible with other information sources, such as diurnal field rotation and spectral diversity. Given the open-ended nature of the background subtraction issues, the ideas explained herein may well the key to imaging habitable planets with Extremely Large Telescopes (ELTs). Fully exploiting the information content of millisecond exposures will require significant design modifications of the ELT wavefront sensors and science camera systems, if ultra-high contrast imaging is to be priority.