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    Multi-species temperature and number density analysis of a laser-produced plasma using dual-comb spectroscopy

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    Author
    Weeks, R.R.D.
    Zhang, Y.
    Harilal, S.S.
    Phillips, M.C.
    Jones, R.J.
    Affiliation
    James C. Wyant College of Optical Sciences, University of Arizona
    Department of Physics, University of Arizona
    Issue Date
    2022
    
    Metadata
    Show full item record
    Publisher
    American Institute of Physics Inc.
    Citation
    Weeks, R. R. D., Zhang, Y., Harilal, S. S., Phillips, M. C., & Jones, R. J. (2022). Multi-species temperature and number density analysis of a laser-produced plasma using dual-comb spectroscopy. Journal of Applied Physics, 131(22).
    Journal
    Journal of Applied Physics
    Rights
    Copyright © 2022 Author(s).
    Collection Information
    This item from the UA Faculty Publications collection is made available by the University of Arizona with support from the University of Arizona Libraries. If you have questions, please contact us at repository@u.library.arizona.edu.
    Abstract
    Dual-comb spectroscopy (DCS) represents a novel method of using absorption spectroscopy as a diagnostic tool for multispecies analysis of excitation temperatures and column densities in laser-produced plasmas (LPPs). DCS was performed on a LPP generated by ablating a multielement alloy containing Nd, Gd, and Fe. Transitions from all three elements were observed in absorption spectra measured from 530.08 to 535.19 nm at seven time-delays from 31 to 250 μs after ablation. The spectra were fit using a nonlinear regression algorithm to determine peak areas, and excitation temperatures and column densities were determined for the three atomic species separately using Boltzmann plots. The measured excitation temperatures of Nd I and Gd I showed good agreement at all time-delays, whereas the Fe I temperature was found to be higher, and the ratios between the column densities varied with delay. The observations are understood via effects of LPP spatial averaging, elemental fractionation, and molecular formation and are compared and contextualized with previous work studying LPPs using other spectroscopic techniques. A brief discussion of the precision and accuracy of the determined excitation temperatures and column densities is also presented. © 2022 Author(s).
    Note
    12 month embargo; published online: 13 June 2022
    ISSN
    0021-8979
    DOI
    10.1063/5.0094213
    Version
    Final published version
    ae974a485f413a2113503eed53cd6c53
    10.1063/5.0094213
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    UA Faculty Publications

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