Chlorine isotope composition in chlorofluorocarbons CFC-11, CFC-12 and CFC-113 in firn, stratospheric and tropospheric air

Publication date

2015

Authors

Allin, S. J.
Laube, J. C.
Witrant, E.
Kaiser, J.
McKenna, E.
Dennis, P.
Mulvaney, R.
Capron, E.
Martinerie, P.
Röckmann, T.ORCID 0000-0002-6688-8968ISNI 0000000396155674

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Abstract

The stratospheric degradation of chlorofluorocarbons (CFCs) releases chlorine, which is a major contributor to the destruction of stratospheric ozone (O-3). A recent study reported strong chlorine isotope fractionation during the breakdown of the most abundant CFC (CFC-12, CCl2F2, Laube et al., 2010a), similar to effects seen in nitrous oxide (N2O). Using air archives to obtain a long-term record of chlorine isotope ratios in CFCs could help to identify and quantify their sources and sinks. We analyse the three most abundant CFCs and show that CFC-11 (CCl3F) and CFC-113 (CClF2CCl2F) exhibit significant stratospheric chlorine isotope fractionation, in common with CFC-12. The apparent isotope fractionation (epsilon(app)) for mid- and high-latitude stratospheric samples are respectively -2.4 (0.5) and -2.3 (0.4) parts per thousand for CFC-11, -12.2 (1.6) and -6.8 (0.8) parts per thousand for CFC-12 and -3.5 (1.5) and -3.3 (1.2) parts per thousand for CFC-113, where the number in parentheses is the numerical value of the standard uncertainty expressed in per mil. Assuming a constant isotope composition of emissions, we calculate the expected trends in the tropospheric isotope signature of these gases based on their stratospheric Cl-37 enrichment and stratosphere-troposphere exchange. We compare these projections to the long-term delta (Cl-37) trends of all three CFCs, measured on background tropospheric samples from the Cape Grim air archive (Tasmania, 1978-2010) and tropospheric firn air samples from Greenland (North Greenland Eemian Ice Drilling (NEEM) site) and Antarctica (Fletcher Promontory site). From 1970 to the present day, projected trends agree with tropospheric measurements, suggesting that within analytical uncertainties, a constant average emission isotope delta (delta) is a compatible scenario. The measurement uncertainty is too high to determine whether the average emission isotope delta has been affected by changes in CFC manufacturing processes or not. Our study increases the suite of trace gases amenable to direct isotope ratio measurements in small air volumes (approximately 200 mL), using a single-detector gas chromatography-mass spectrometry (GC-MS) system.

Keywords

OZONE-DEPLETING SUBSTANCES, ATMOSPHERIC N2O, NITROUS-OXIDE, ICE-CORE, SEASONAL CYCLES, POLAR FIRN, SOUTH-POLE, GREENLAND, CHEMISTRY, TRANSPORT

Citation

Allin, S J, Laube, J C, Witrant, E, Kaiser, J, McKenna, E, Dennis, P, Mulvaney, R, Capron, E, Martinerie, P, Roeckmann, T, Blunier, T, Schwander, J, Fraser, P J, Langenfelds, R L & Sturges, W T 2015, 'Chlorine isotope composition in chlorofluorocarbons CFC-11, CFC-12 and CFC-113 in firn, stratospheric and tropospheric air', Atmospheric chemistry and physics, vol. 15, no. 12, pp. 6867-6877. https://doi.org/10.5194/acp-15-6867-2015