Calibration of Nu-Instruments Noblesse multicollector mass spectrometers for argon isotopic measurements using a newly developed reference gas
The greatest challenge limiting 40Ar/ 39Ar multicollection measurements is the availability of appropriate standard gasses to intercalibrate detectors. In particular, use of zoom lens ion-optics to steer and focus ion beams into a fixed detector array (i.e., Nu Instruments Noblesse) makes intercalib...
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Veröffentlicht in: | Chemical geology 2011-11, Vol.290 (1), p.75-87 |
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Zusammenfassung: | The greatest challenge limiting
40Ar/
39Ar multicollection measurements is the availability of appropriate standard gasses to intercalibrate detectors. In particular, use of zoom lens ion-optics to steer and focus ion beams into a fixed detector array (i.e., Nu Instruments Noblesse) makes intercalibration of multiple detectors challenging because different ion-optic tuning conditions are required for optimal peak shape and sensitivity at different mass stations. We have found that detector efficiency and mass discrimination are affected by changes in ion-optic tuning parameters. Reliance upon an atmospheric Ar standard to calibrate the Noblesse is problematic because there is no straightforward way to relate atmospheric
40Ar and
36Ar to measurements of
40Ar and
39Ar if they are measured on separate detectors. After exploring alternative calibration approaches, we have concluded that calibration of the Noblesse is best performed using exactly the same source, detector, and ion-optic tuning settings as those used in routine
40Ar/
39Ar analysis. To accomplish this, we have developed synthetic reference gasses containing
40Ar,
39Ar and
38Ar produced by mixing gasses derived from neutron-irradiated sanidine with an enriched
38Ar spike. We present a new method for calibrating the Noblesse based on use of both atmospheric Ar and the synthetic reference gasses. By combining atmospheric Ar and synthetic reference gas in different ways, we can directly measure
40Ar/
39Ar,
38Ar/
39Ar, and
36Ar/
39Ar correction factors over ratios that vary from 0.5 to 460. These correction factors are reproducible to better than ±
0.5‰ (2σ standard error) over intervals spanning ~
24
h but can vary systematically by ~
4% over 2
weeks of continuous use when electron multiplier settings are held constant. Monitoring this variation requires daily calibration of the instrument. Application of the calibration method to
40Ar/
39Ar multicollection measurements of widely used sanidine reference materials ACs-2, FCs-2, and TCs-2 demonstrate that calculated
40Ar*/
39Ar
K can be accurately corrected to yield model
40Ar/
39Ar ages consistent with those reported by Earthtime
40Ar/
39Ar laboratories. Replicate analyses of 8–12 single-crystal sanidine ages are reproduced to within 1–2‰ (2σ standard error) under optimal analytical conditions. This calibration technique is applicable over a wide range of isotopic ratios and signal sizes. Finally, the reference gas has the added advantage of facilitat |
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ISSN: | 0009-2541 1872-6836 |
DOI: | 10.1016/j.chemgeo.2011.09.003 |