Performance of ICP-TOF-MS for ultra-trace element analyses in ice cores

Abstract

Ice cores serve as unique paleo-archives allowing access to long-term records of trace elements, which are important for our understanding of global biogeochemical cycles and air pollution. However, analysis of trace elements in ice cores is a challenge, because of very low concentration levels and their presence in dissolved and particulate form. The commonly used and well-established technique for analysis of trace elements in ice cores is inductively coupled plasma sector field mass spectrometry (ICP-SF-MS). Recently, inductively coupled plasma time of flight mass spectrometry (ICP-TOF-MS) was introduced as a new, promising technique. Due to its fast acquisition time for the near-full mass spectral range, it allows for the detection of short transient signals, offering the opportunity to determine the elemental composition of single particles. In this study, the performance of this new technique for analyzing total trace element concentrations was tested and compared to the one established in the field of ice core research. The focus was on sensitivity, precision, and optimization of sample preparation in sections from two ice cores (Colle Gnifetti, Cerro Negro), characterized by different impurity levels. The performance of the ICP-TOF-MS was excellent for the investigated trace elements within the nominal mass range from 23 to 238, except for 45Sc because of insufficiently resolved mass interferences. This is very promising for many applications in ice core research, especially in view of the great benefit to analyze single particles simultaneously in the same sample.

Supplementary files

Article information

Article type
Paper
Submitted
23 Jul 2025
Accepted
12 Sep 2025
First published
06 Oct 2025
This article is Open Access
Creative Commons BY license

J. Anal. At. Spectrom., 2025, Accepted Manuscript

Performance of ICP-TOF-MS for ultra-trace element analyses in ice cores

T. S. Muenster, T. M. Jenk, A. Eichler, G. Lee and M. Schwikowski, J. Anal. At. Spectrom., 2025, Accepted Manuscript , DOI: 10.1039/D5JA00286A

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