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Characterization of a Spatially resolved multi-element laser ablation ion source

Publication ,  Journal Article
Murray, K; Chambers, C; Chen, D; Feng, Z; Fraser, J; Ito, Y; Lan, Y; Mendez, S; Medina Peregrina, M; Rasiwala, H; Richez, L; Roy, N ...
Published in: International Journal of Mass Spectrometry
February 1, 2022

A laser ablation ion source (LAS) is a powerful tool by which diverse species of ions can be produced for mass spectrometer calibration or surface study applications. It is necessary to frequently shift the laser position on the target to selectively ablate materials in a controlled manner, and to mitigate degradation of the target surface caused by ablation. An alternative to mounting the target onto a rotation wheel or x − y translation stage, is to shift the laser spot position with a final reflection from a motorized kinematic mirror mount. Such a system has been developed, assembled and characterized with a two axis motorized mirror and various metal targets. In the system presented here, ions are ablated from the target surface and guided by a 90° quadrupole bender to a Faraday cup where the ion current is measured. Spatially resolved scans of the target are produced by actuating the mirror motors, thus moving the laser spot across the target, and performing synchronous measurements of the ion current to construct 2D images of a target surface which can be up to 50 mm in diameter. The spatial resolution of the system has been measured by scanning the interfaces between metals such as steel and niobium, where it was demonstrated that the LAS can selectively ablate an area of diameter ≈50 μm. This work informs the development of subsequent LAS systems, that are intended to serve as multi-element ion sources for commercial and custom-built time-of-flight mass spectrometers, or to selectively study surface specific regions of samples.

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Published In

International Journal of Mass Spectrometry

DOI

ISSN

1387-3806

Publication Date

February 1, 2022

Volume

472

Related Subject Headings

  • Analytical Chemistry
  • 5102 Atomic, molecular and optical physics
  • 3406 Physical chemistry
  • 3401 Analytical chemistry
  • 0306 Physical Chemistry (incl. Structural)
  • 0305 Organic Chemistry
  • 0301 Analytical Chemistry
 

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Murray, K., Chambers, C., Chen, D., Feng, Z., Fraser, J., Ito, Y., … Brunner, T. (2022). Characterization of a Spatially resolved multi-element laser ablation ion source. International Journal of Mass Spectrometry, 472. https://doi.org/10.1016/j.ijms.2021.116763
Murray, K., C. Chambers, D. Chen, Z. Feng, J. Fraser, Y. Ito, Y. Lan, et al. “Characterization of a Spatially resolved multi-element laser ablation ion source.” International Journal of Mass Spectrometry 472 (February 1, 2022). https://doi.org/10.1016/j.ijms.2021.116763.
Murray K, Chambers C, Chen D, Feng Z, Fraser J, Ito Y, et al. Characterization of a Spatially resolved multi-element laser ablation ion source. International Journal of Mass Spectrometry. 2022 Feb 1;472.
Murray, K., et al. “Characterization of a Spatially resolved multi-element laser ablation ion source.” International Journal of Mass Spectrometry, vol. 472, Feb. 2022. Scopus, doi:10.1016/j.ijms.2021.116763.
Murray K, Chambers C, Chen D, Feng Z, Fraser J, Ito Y, Lan Y, Mendez S, Medina Peregrina M, Rasiwala H, Richez L, Roy N, Simpson R, Dilling J, Fairbank W, Kwiatkowski AA, Brunner T. Characterization of a Spatially resolved multi-element laser ablation ion source. International Journal of Mass Spectrometry. 2022 Feb 1;472.
Journal cover image

Published In

International Journal of Mass Spectrometry

DOI

ISSN

1387-3806

Publication Date

February 1, 2022

Volume

472

Related Subject Headings

  • Analytical Chemistry
  • 5102 Atomic, molecular and optical physics
  • 3406 Physical chemistry
  • 3401 Analytical chemistry
  • 0306 Physical Chemistry (incl. Structural)
  • 0305 Organic Chemistry
  • 0301 Analytical Chemistry