Computing Highly Accurate Spectroscopic Line Lists for Characterization of Planetary Atmospheres: CO2 and SO2 Line Lists Needed for Modeling VenusOver the last decade, it has become apparent that the most effective approach for determining highly accurate rotational and rovibrational line lists for molecules of interest in planetary atmospheres and other astrophysical environments is through a combination of highresolution laboratory experiments coupled with state-of-the art ab initio quantum chemistry methods. The approach involves computing the most accurate potential energy surface (PES) possible using state-of-the art electronic structure methods, followed by computing rotational and rovibrational energy levels using an exact variational method to solve the nuclear Schrödinger equation. Then, reliable experimental data from high-resolution experiments is used to refine the ab initio PES in order to improve the accuracy of the computed energy levels and transition energies. From the refinement step, we have been able to achieve an accuracy of approximately 0.015 cm-1 for rovibrational transition energies, and even better for purely rotational transitions. This combined "experiment / theory" approach allows for determination of essentially a complete line list, with hundreds of millions of transitions, and having the transition energies and intensities be highly accurate. Our group has successfully applied this approach to determine highly accurate line lists for NH3, CO2 and isotopologues, and SO2 and isotopologues. Here I will report our latest results for CO2 and SO2 including all isotopologues. Comparisons to the available data in HITRAN2012 and other available databases will be shown, though we note that our line lists for SO2 are significantly more complete than any other databases. Since it is important to span a large temperature range in order to model the spectral signature of Venus as well as exoplanets, we will demonstrate how the spectra change on going from low temperatures (100 K) to higher temperatures (500 K to 1500 K).
Document ID
20180007941
Acquisition Source
Ames Research Center
Document Type
Abstract
Authors
Lee, Timothy J. (NASA Ames Research Center Moffett Field, CA, United States)
Huang, Xinchuan (Search for Extraterrestrial Intelligence Inst. Moffett Field, CA, United States)
Schwenke, David W. (NASA Ames Research Center Moffett Field, CA, United States)
Date Acquired
November 30, 2018
Publication Date
August 19, 2016
Subject Category
Lunar And Planetary Science And Exploration
Report/Patent Number
ARC-E-DAA-TN31102Report Number: ARC-E-DAA-TN31102
Meeting Information
Meeting: American Chemical Society (ACS) National Meeting & Exposition 2018
Location: Philadalephia, PA
Country: United States
Start Date: August 19, 2018
End Date: August 23, 2018
Sponsors: American Chemical Society
Funding Number(s)
CONTRACT_GRANT: NNX15AF45A
Distribution Limits
Public
Copyright
Public Use Permitted.
Keywords
potential energy surface (PES)5405 PLANETARY SCIENCES: SOLID SURFACE PLANETS Atm