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Jakob Haynes

Publications and source records attributed to Jakob Haynes.

3 recordsLinked to original sources

Detection of Organics in Water Ice by Optical-PhotoThermal Infrared Spectroscopy

The detection and characterization of organic molecules within water ice is vital for interpreting observations of icy moons and comets. However, organic-ice interactions often distort intrinsic water-ice absorption features, complicating infrared (IR) spectral analysis. This study evaluated Optical Photothermal Infrared (O-PTIR) spectroscopy as a non-destructive, sub-micrometer resolution technique to detect and quantify embedded organics. Using a temperature-controlled sample environment to maintain ice stability, frozen mixtures of amino and hydroxy acids were analyzed across a broad concentration range. L-glycine was successfully detected down to approximately $10^{-6}\text{ M}$, yielding an experimental limit of detection (LOD) of $0.2\,\mu\text{M}$ and a limit of quantification (LOQ) of $3.83\,\mu\text{M}$. Furthermore, O-PTIR measurements of binary mixtures containing L-glycine and lactic acid demonstrated the capacity to differentiate and quantify multiple organic components within a single ice matrix. Notably, a broad absorption feature centered near the water-bending mode appeared exclusively in organic-bearing ice samples and was absent in pure $\text{H}_2\text{O}$ and $\text{D}_2\text{O}$ controls. Comparative analysis in these matrices revealed that embedded organics actively perturb intrinsic ice features, providing new constraints on organic-ice interactions. Ultimately, these results demonstrate that O-PTIR spectroscopy can reliably detect, quantify, and spatially resolve organic compounds in water ice while preserving crucial sample context. The technique offers a promising framework for future laboratory investigations of icy planetary materials and directly informs the interpretation of spectroscopic data from volatile-rich space environments.

astro-ph.IM

Photothermal Spectroscopy for Planetary Sciences: A Characterization of Planetary Materials in the Mid-IR

Understanding of the formation and evolution of the Solar System requires understanding key and common materials found on and in planetary bodies. Mineral mixing and its implications on planetary body formation is a topic of high interest to the planetary science community. Previous work establishes a case for the use of Optical PhotoThermal InfraRed (O-PTIR) in planetary science and introduces and demonstrates the technique's capability to study planetary materials. In this paper, we performed a measurement campaign on granular materials relevant to planetary science, such as minerals found in lunar and martian soils. These laboratory measurements serve to start a database of O-PTIR measurements. We also present FTIR absorption measurements of the materials we observed in O-PTIR for comparison purposes. We find that the O-PTIR technique suffers from granular orientation effects similar to other IR techniques, but in most cases, is is directly comparable to commonly used absorption spectroscopy techniques. We conclude that O-PTIR would be an excellent tool for the purpose of planetary material identification during in-situ investigations on regolith and bedrock surfaces.

astro-ph.EP

Photothermal Spectroscopy for Planetary Sciences: Mid-IR Absorption Made Easy

The understanding of the formation and evolution of the solar system still has many unanswered questions. Formation of solids in the solar system, mineral and organic mixing, and planetary body creation are all topics of interest to the community. Studying these phenomena is often performed through observations, remote sensing, and in-situ analysis, but there are limitations to the methods. Limitations such as IR diffraction limits, spatial resolution issues, and spectral resolution issues can prevent detection of organics, detection and identification of cellular structures, and the disentangling of granular mixtures. Optical-PhotoThermal InfraRed (O-PTIR) spectroscopy is a relatively new method of spectroscopy currently used in fields other than planetary sciences. O-PTIR is a non-destructive, highly repeatable, and fast form of measurement capable of reducing these limitations. Using a dual laser system with an IR source tuned to the mid-IR wavelength we performed laboratory O-PTIR measurements to compare O-PTIR data to existing IR absorption data and laboratory FTIR measurements for planetary materials. We do this for the purpose of introducing O-PTIR to the planetary science community. The technique featured here would serve to better measurements of planetary bodies during in-situ analysis. We find that, unlike other fields where O-PTIR produces almost one-to-one measurements with IR absorption measurements of the same material, granular materials relevant to planetary science do not. However, we do find that the materials compared were significantly close and O-PTIR was still capable of identifying materials relevant to planetary science.

astro-ph.EP