Published 2020 | Version v1
Miscellaneous

Laser Ablation radiocarbon analysis of a high alpine stalagmite - a hint to an old organic carbon pool?

Description

A novel technique making use of laser ablation coupled online to accelerator mass spectrometry (LA-AMS) allows analyzing the radiocarbon concentration (F14C) in carbonate samples at a spatial resolution down to ~100 µm within very short analysis times [1]. This new technique can provide radiocarbon data close to the spatial resolution of stable carbon isotope measurements and, thus, can help to interpret #delta#13C signatures, which otherwise are difficult to understand [2]. Conventional analytical methods applied to stalagmite samples for 14C analysis, where a micro-sample is drilled or milled and carbon is liberated by the addition of phosphoric acid provide exclusively the isotope composition of the CaCO3, but not of organic matter also captured in stalagmites. LA-AMS allows accessing the 14C concentration of both materials opening up new opportunities for gaining insights into vegetation and soil dynamics. SPA-127 is a stalagmite from Spannagel cave (W Austrian Alps) that grew between 8500 and 2500 a BP at an average rate of 25 #mu#m/a [3]. #delta#13C and 14C were analyzed with high resolution along the full range of the 15 cm long specimen. During LA-AMS 14C analysis, positive anomalies in ion currents were observed in the older stalagmite section. These comparably higher CO2 conversion efficiencies are associated with organic materials compared to CaCO3 during LA. Lower F14C were observed along with these anomalies. The signal structure could be reproduced both after removing ~0.5 mm of the carbonate surface layer and on the stalagmite's archive slab making possible contamination unlikely. So far, we deduce that the observed anomalies are caused by several flushing events in the early Holocene, in which 14C dead organic components (acids) entered the cave and were incorporated into the stalagmite matrix. Due to the high elevation of the cave and cold conditions during the glacial, the ancient organic acids most likely stem from the Eemian and were stored in the host rock. [1] C. Welte, et al., (2016). Anal. Chem., 88, 8570– 8576. [2] F. McDermott, (2004). Quat. Sci. Rev., 23, 901-918. [3] Fohlmeister J. et al., (2013). Holocene, 23, 749–754.

Availability note (English)

Available in electronic form from: https://doi.org/10.5194/egusphere-egu2020-7298
Part of:
Sharing Geoscience Online

Additional details

Publishing Information

Imprint Title
General Assembly 2020 of the European Geosciences Union (EGU)
Imprint Pagination
vp.
Journal Page Range
vp.
Report number
INIS-DE--2102889

Conference

Title
General Assembly 2020 of the European Geosciences Union (EGU)
Dates
4-8 May 2020
Place
Munich (Germany)

Optional Information