Infrared Photodissociation Spectroscopy of Water-Tagged Ions with a Widely Tunable Quantum Cascade Laser for Planetary Science Applications
Abstract
This work presents a benchtop method for collecting the room temperature gas phase infrared (IR) action spectra of protonated amino acids and their isomers. The adopted setup uses a minimally modified commercial electrospray ionization linear ion trap mass spectrometer (ESI-LIT-MS) coupled to a broadband continuous wave (cw) quantum cascade laser (QCL) source. This approach leverages messenger assisted action spectroscopic techniques using water-tagged molecular ions with complex formation, irradiation, and subsequent analysis, all taking place within a single linear ion trap stage. This configuration thus circumvents the use of multiple mass selection and analysis stages, cryogenic buffer cells, and complex high-power laser systems typically called upon to execute these techniques. The benchtop action spectrometer is used to collect the 935–1600 cm–1 (6.2–10.7 μm) IR action spectrum of a collection of amino acids and a dipeptide with results cross referenced against literature examples obtained with a free electron laser source. Recorded IR spectra are used for the analysis of binary mixture samples composed of constitutional isomers α-alanine and β-alanine with ratios determined to ∼4% measurement uncertainty without the aid of a front-end separation stage. This turn-key QCL-based approach is a major step in showing the viability of tag-based action spectroscopic techniques for use in future in situ planetary science sensors and general analytical applications.
Copyright and License
© 2024 California Institute of Technology. Gov't sponsorship acknowledged. Published by American Chemical Society. This publication is licensed under CC-BY-NC-ND 4.0.
Acknowledgement
The research was carried out at the Jet Propulsion Laboratory, California Institute of Technology, under a contract with the National Aeronautics and Space Administration (80NM0018F0613). Additional support was provided from the National Science Foundation Graduate Research Fellowship under Grant No. 2139433 and the John Stauffer SURF Fellowship. The authors thank Dr. Mona Shahgholi of the Caltech Mass Spectrometry Facility, Professor J. L. Beauchamp, Dr. Charles R. Markus, and Dr. Gregory H. Jones for useful discussions and also Dr. Gilles Ohanessian for the reference spectrum plotted in Figure 1.
Data Availability
- Experimental and computational details, infrared action spectra compared to calculated spectra, all spectra mixture trials, and thermodynamic quantities (binding energy) of singly hydrated, protonated amino acids (PDF)
Conflict of Interest
The authors declare no competing financial interest.
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Additional details
- ISSN
- 1520-6882
- DOI
- 10.1021/acs.analchem.4c01023
- PMCID
- PMC11155675
- National Aeronautics and Space Administration
- 80NM0018F0613
- National Science Foundation
- NSF Graduate Research Fellowship DGE-2139433
- California Institute of Technology
- Summer Undergraduate Research Fellowship