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High spatial resolution trace element determination of geological samples by laser ablation quadrupole plasma mass spectrometry: implications for glass analysis in volcanic products

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Abstract

Increasing the spatial resolution of Laser Ablation Inductively Coupled Plasma Mass Spectrometry (LA-ICP-MS) is a challenge in microanalysis of geological samples. Smaller sizes for the laser beam will allow for (1) high resolution determination of trace element compositions, (2) accurate estimation of crystal/melt partition coefficients, (3) detailed characterization of diffusion profiles, and (4) analysis of fine volcanic glasses. Here, we report about the figures of merit for LA-ICP Quadrupole MS down to a spatial resolution of 5 μm. This study highlights the possibility to achieve suitable limits of detection, accuracy and precision for geological samples even at spatial resolutions of the order of 5 μm. At a beam size of 15 μm, precision (measured as one sigma) and accuracy (expressed as relative deviation from the reference value) are of the order of 10%. At a smaller beam size of 8 um, precision decreases to 15% for concentration above 1.7 μg g–1. As the beam size is decreased to ∼5 μm, precision declines to about 15% and 20% for concentrations above 10 μg g–1 using 42Ca and 29Si as internal standard, respectively. Accuracy is better or equal to 10% and 13% at beam sizes of 15 and 10 μm, respectively. When the spatial resolution is increased to 8 μm, accuracy remains better than 15% and 20% for 42Ca and 29Si as internal standard, respectively. We employed such high-resolution techniques to volcanic glasses in ash particles of the 2010 Eyjafjallajökull eruption. Our results are well consistent with the previously reported data obtained at lower spatial resolution, supporting the reliability of the method.

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References

  • Alagna, K.E., Petrelli, M., Perugini, D., and Poli, G., 2008, Microanalytical zircon and monazite U-Pb isotope dating by laser ablation-inductively coupled plasma-quadrupole mass spectrometry. Geostandards and Geoanalytical Research, 32, 103–120.

    Article  Google Scholar 

  • Becker, J.S. and Dietze, H.J., 1999, Determination of trace elements in geological samples by laser ablation inductively coupled plasma mass spectrometry. Fresenius’ Journal of Analytical Chemistry, 365, 429–434.

    Article  Google Scholar 

  • Bonta, M., Limbeck, A., Quarles Jr., C.D., Oropeza, D., Russo, R.E., and Gonzalez, J.J., 2015, A metric for evaluation of the image quality of chemical maps derived from LA-ICP-MS experiments. Journal of Analytical Atomic Spectrometry, 30, 1809–1815.

    Article  Google Scholar 

  • Borisova, A.Y., Toutain, J.P., Stefansson, A., Gouy S., and de Parseval, P., 2012, Processes controlling the 2010 Eyjafjallajökull explosive eruption. Journal of Geophysical Research, 117, B05202.

    Article  Google Scholar 

  • Durrant, S.F., 1999, Laser ablation inductively coupled plasma-mass spectrometry: achievements, problems, prospects. Journal of Analytical Atomic Spectrometry, 14, 1385–1403.

    Article  Google Scholar 

  • Eggins, S.M., Kinsley, L.P.J., and Shelley, J.M.G., 1998, Deposition and element fractionation processes during atmospheric pressure laser sampling for analysis by ICP-MS. Applied Surface Science, 127–129, 278–286.

    Article  Google Scholar 

  • Ferrando, S., Frezzotti, M.L., Petrelli, M., and Compagnoni, R., 2009, Metasomatism of continental crust during subduction: the UHP whiteschists from the Southern Dora-Maira Massif (Italian Western Alps). Journal of Metamorphic Geology, 27, 739–756.

    Article  Google Scholar 

  • Fryer, B.J., Jackson, S.R., and Longerich, H.P., 1995, The design, operation and role of the laser ablation microprobe coupled with an inductively coupled plasma-mass spectrometer (LAM-ICPMS) in the earth sciences. Canadian Mineralogist, 33, 303–312.

    Google Scholar 

  • Gaboardi, M. and Humayun, M., 2009, Elemental fractionation during LA-ICP-MS analysis of silicate glasses: implications for matrixindependent standardization. Journal of Analytical Atomic Spectrometry, 24, 1188–1197.

    Article  Google Scholar 

  • Gray, A.L., 1985, Solid Sample introduction by laser ablation for inductively coupled plasma source mass spectrometry. Analyst, 110, 551–556.

    Article  Google Scholar 

  • Günther, D., Longerich, H.P., Jackson, S.E., and Forsythe, L., 1996, Effect of sampler orifice diameter on dry plasma inductively coupled plasma mass spectrometry (ICP-MS) backgrounds, sensitivities, and limits of detection using laser ablation sample introduction. Fresenius’ Journal of Analytical Chemistry, 355, 771–773.

    Google Scholar 

  • Günther, D., Audétat, A., Frischknecht, A., and Heinrich, C.A., 1998, Quantitative analysis of major, minor, and trace elements in fluid inclusions using laser ablation-inductively coupled plasma mass spectrometry. Journal of Analytical Atomic Spectrometry, 13, 263–270.

    Article  Google Scholar 

  • Günther, D. and Heinrich, C.A., 1999, Enhanced sensitivity in laser ablation-ICP mass spectrometry using helium-argon mixtures as aerosol carrier. Journal of Analytical Atomic Spectrometry, 14, 1363–1368.

    Article  Google Scholar 

  • Günther, D., Jackson, S.E., and Longerich, H.P., 1999, Laser ablation and ark/spark solid sample introduction into inductively coupled plasma mass spectrometers. Spectrochimica Acta Part B, 54, 381–409.

    Article  Google Scholar 

  • Günther, D., 2001, Elemental fractionation in LA-ICP-MS. In: Sylvester, P. (ed.), Laser ablation ICP-MS in Earth sciences: Principles and applications. Mineralogical Associations of Canada Short Course Series, 29, p. 243.

    Google Scholar 

  • Günther, D., Hattendorf, B., and Audétat, A., 2001, Multi-element analysis of melt and fluid inclusions with improved detection capabilities for Ca and Fe using laser ablation with a dynamic reaction cell ICP-MS. Journal of Analytical Atomic Spectrometry, 16, 1085–1090.

    Article  Google Scholar 

  • Günther, D. and Koch, J., 2008, Formation of aerosols generated by laser ablation and their impact on elemental fractionation in LAICP-MS. Mineralogical Association of Canada Short Course Series, 40, 19–34.

    Google Scholar 

  • Guillong, M. and Günther, D., 2002, Effect on particle size distribution in ICP-induced elemental fractionation in laser ablation inductively coupled plasma-mass spectrometry. Journal of Analytical Atomic Spectrometry, 17, 831–837.

    Article  Google Scholar 

  • Halter, W.E., Pettke, T., and Heinrich, C.A., 2002, The origin of Cu/Au ratios in porphyry-type ore deposits. Science, 7, 1844–1846.

    Article  Google Scholar 

  • Horn, I., Rudnick, R.L., and McDonough, W.F., 2000, Precise elemental and isotope ratio determination by simultaneous solution nebulization and laser ablation ICP-MS: Application to U-Pb geochronology. Chemical Geology, 167, 405–425.

    Article  Google Scholar 

  • Hu, Z., Gao, S., Liu, Y., Hu, S., Chen, H., and Yuan, H., 2008, Signal enhancement in laser ablation ICP-MS by addition of nitrogen in the central channel gas. Journal of Analytical Atomic Spectrometry, 23, 1093–1101.

    Article  Google Scholar 

  • Jeffries, T.E., Perkins, W.T., and Pearce, N.J.G., 1995, Comparisons of infrared and ultraviolet laser probe microanalysis inductively coupled plasma mass spectrometry in mineral analysis. Analyst, 120, 1365–1371.

    Article  Google Scholar 

  • Jeffries, T.E., Jackson, S.E., and Longerich, H.P., 1998, Application of a frequency quintupled Nd:YAG (? = 213 nm) for laser ablation inductively coupled plasma mass spectrometric analysis of minerals. Journal of Analytical Atomic Spectrometry, 13, 935–940.

    Article  Google Scholar 

  • Jenner, G.A., Foley, S.F., Jackson, S.E., Green, T.H., Fryer, B.J., and Longerich, H.P., 1993, Determination of partition coefficients for trace elements in high pressure-temperature experimental run products by laser ablation microprobe–inductively coupled plasma mass spectrometry (LAM-ICP-MS). Geochimica et Cosmochimica Acta, 58, 5099–5104.

    Article  Google Scholar 

  • Kil, Y., 2011, In-situ determination of trace elements in clinopyroxene from mantle rocks by LA-ICP-MS: Comparison of different external standard. Journal of analytical chemistry, 66, 496–503.

    Article  Google Scholar 

  • Kil, Y., Shin, H-S., Oh, H-Y., Kim, J-S., Choi, M-S., Shin, H-J., and Park, C-S., 2011, In-situ trace element analysis of clinopyroxene on thin section by using LA-ICP-MS. Geosciences Journal, 15, 177–183.

    Article  Google Scholar 

  • Kil, Y. and Jung, H., 2015, LA-ICP-MS analysis of natural rock samples using XRF glass beads. Geosciences Journal, 19, 45–52.

    Article  Google Scholar 

  • Kimura, J.I., Chang, Q., Itano, K., Iizuka, T., Vaglarova, S., and Tani, K., 2015, An improved U-Pb age dating method for zircon and monazite using 200/266 nm femtosecond laser ablation and enhanced sensitivity multiple-Faraday collector inductively coupled plasma mass spectrometry. Journal of Analytical Atomic Spectrometry, 30, 494–505.

    Article  Google Scholar 

  • Košler, J., Fonneland, H., Sylvester, P.J., Tubrett, M., and Pedersen, R.B., 2002, U-Pb dating of detrital zircons for sediment provenance studies-a comparison of laser ablation ICPMS and SIMS technique. Chemical Geology, 182, 605–618.

    Article  Google Scholar 

  • Latkoczy, C. and Günther, D., 2002, Enhanced sensitivity in inductively coupled plasma sector field mass spectrometry for direct solid analysis using laser ablation (LA-ICP-SFMS). Journal of Analytical Atomic Spectrometry, 17, 1264–1270.

    Article  Google Scholar 

  • Li, C., Zhang, R., Ding, X., Ling, M., Fan, W., and Sun, W., 2016, Dating cassiterite using laser ablation ICP-MS. Ore Geology Reviews, 72, 313–322.

    Article  Google Scholar 

  • Longerich, H.P., Jackson, S.E., and Günther, D., 1996, Laser ablation inductively coupled plasma mass spectrometric transient signal data acquisition and analyte concentration calculation. Journal of Analytical Atomic Spectrometry, 11, 899–904.

    Article  Google Scholar 

  • Müller, W., Shelley, M., Miller, P., and Broude, S., 2009, Initial performance metrics of a new custom-designed ArF excimer LAICPMS system coupled to a two-volume laser-ablation cell. Journal of Analytical Atomic Spectrometry, 24, 209–214.

    Article  Google Scholar 

  • Norman, M.D., Pearson, N.J., Sharma, A., and Griffin, W.L., 1996, Quantitative analysis of trace elements in geological materials by Laser Ablation ICP-MS: instrumental operating conditions and calibration values of NIST glasses. Geostandards Newsletter, 20, 247–261.

    Article  Google Scholar 

  • Norman, M.D., Griffin, W.L., Pearson, N.J., Garcia, M.O., and O’reilly, S.Y., 1998, Quantitative analysis of trace elements abundances in glasses and minerals: a comparison of laser ablation inductively coupled plasma mass spectrometry, solution inductively coupled plasma mass spectrometry, proton microprobe and electron microprobe data. Journal of Analytical Atomic Spectrometry, 13, 477–482.

    Article  Google Scholar 

  • Paquette, J.L. and Tiepolo, M., 2007, High resolution (5 µm) U-Th-Pb isotopes dating of monazite with excimer laser ablation (ELA)-ICPMS. Chemical Geology, 240, 222–237.

    Article  Google Scholar 

  • Pearce, N.J.G., Perkins, W.T., Westgate, J.A., and Wade, S.C., 2011, Trace-element microanalysis by LA-ICP-MS: the quest for comprehensive chemical characterisation of single, sub-10 µm volcanic glass. Quaternary International, 246, 57–81.

    Article  Google Scholar 

  • Perkins, W.T. and Pearce, N.J.G., 1995, Mineral microanalysis by laserprobe inductively coupled plasma mass spectrometry. In: Potts, P.J., Bowles, J.F.W., Reed, S.J.B., and Cave, M.R. (eds.), Microprobe Techniques in the Earth Sciences. The Mineralogical Society Series, 6, London, p. 291–325.

    Chapter  Google Scholar 

  • Petrelli, M., Caricchi, L., and Ulmer, P., 2007, Application of high spatial resolution laser ablation ICP-MS to crystal-melt trace element partition coefficient determination. Geostandards and Geoanalytical Research, 31, 13–25.

    Article  Google Scholar 

  • Petrelli, M., Perugini, D., Alagna, K.E., Poli, G., and Peccerillo, A., 2008, Spatially resolved and bulk trace element analysis by laser ablation-inductively coupled plasma-mass spectrometry (LA-ICPMS). Periodico di Mineralogia, 77, 3–21.

    Google Scholar 

  • Petrelli, M., Morgavi, D., Vetere F.P., and Perugini D., 2016, Elemental imaging and petro-volcanological applications of an improved laser ablation inductively coupled quadrupole plasma mass spectrometry. Periodico di Mineralogia. doi: 10.2451/2015PM0465

    Google Scholar 

  • Pozebon, D., Scheffler, G.L., Dressler, V.L., and Nunes, M.A.G., 2014, Review of the applications of laser ablation inductively coupled plasma mass spectrometry (LA-ICP-MS) to the analysis of biological samples. Journal of Analytical Atomic Spectrometry, 29, 2204–2228.

    Article  Google Scholar 

  • Sigmarsson, O., Vlastelic, I., Andreasen, R., Bindemann, I., Devidal, J.L., Moune, S., Keiding, J.K., Höskuldsson, A., and Thordarason, T., 2011, Remobilization of silicic intrusion by mafic magmas during the 2010 Eyjafjallajökull eruption. Solid Earth, 2, 271–281.

    Article  Google Scholar 

  • Sun, S.S. and McDonough, W.F., 1989, Chemical isotopic systematics of oceanic basalts; implications for mantle composition and processes. Geological Society of London, Special Publications, 42, 313–345.

    Article  Google Scholar 

  • Sylvester, P., 2001, Laser Ablation ICP-MS in the Earth Sciences: Principles and applications. Mineralogical Association of Canada Short Course Series, 29, p. 243.

    Google Scholar 

  • Sylvester, P., 2008, Laser Ablation ICP-MS in the Earth Sciences: Current Practices and Outstanding Issues. Mineralogical Association of Canada Short Course Series, 40, p. 356.

    Google Scholar 

  • Taylor, R.P., Jackson, S.E., Longerich, H.P., and Webster, J.D., 1997, In situ trace element analysis of individual silicate melt inclusions by laser ablation microprobe inductively coupled plasma–mass spectrometry (LAM-ICP-MS). Geochimica et Cosmochimica Acta, 61, 2559–2567.

    Article  Google Scholar 

  • Tiepolo, M., 2003, In situ Pb geochronology of zircon with laser ablation-inductively coupled plasma-sector field mass spectrometry. Chemical Geology, 199, 159–177.

    Article  Google Scholar 

  • Tiepolo, M., Bottazzi, P., Palenzona, M., and Vannucci, R., 2003, A laser probe couplet with ICP-double focusing sector-field mass spectrometer for in situ analysis of geological samples and U-Pb dating of zircon. The Canadian Mineralogist, 41, 259–272.

    Article  Google Scholar 

  • Wilson, S.A., 1997, The collection, preparation, and testing of USGS reference material BCR-2, 557 Columbia River, Basalt. United States Geological Survey, Open-File Report, 98 p.

    Google Scholar 

  • Woodhead, J., Hergt, J., Shelley, M., Eggins, S., and Kemp, R., 2004, Zircon Hf-isotope analysis with an excimer laser, depth profiling, ablation of complex geometries, and concomitant age estimation. Chemical Geology, 209, 121–135.

    Article  Google Scholar 

  • Xiaoxia, D. and Regelous, M., 2014, Rapid determination of 26 elements in iron meteorites using matrix removal and membrane desolvating quadrupole ICP-MS. Journal of Analytical Atomic Spectrometry, 29, 2379–2387.

    Article  Google Scholar 

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Petrelli, M., Laeger, K. & Perugini, D. High spatial resolution trace element determination of geological samples by laser ablation quadrupole plasma mass spectrometry: implications for glass analysis in volcanic products. Geosci J 20, 851–863 (2016). https://doi.org/10.1007/s12303-016-0007-z

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  • DOI: https://doi.org/10.1007/s12303-016-0007-z

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