Geological Survey of Denmark and Greenland Bulletin 15, 2008, 73-76 In the last three field seasons the Geological Survey of Denmark and Greenland (GEUS) has undertaken mapping in the south-eastern part of the Nuuk region in southern West Greenland, and here we present new zircon ages that help constrain the northern boundary of the Tasiusarsuaq ter- rane. The Archaean geology of the Nuuk region is commonly interpreted as a tectonic collage assembled through lateral accretion and collision of oceanic and continental slivers and blocks (e.g. Friend & Nutman 2005). Popular jargon de - scribes these as terranes, bounded by faults or mylonite zones and characterised by rocks of contrasting origin on either side of their tectonic boundaries (Coney et al. 1980). The Isukasia and Færingehavn terranes (Figs 1, 2) are the oldest terranes at ≥3.75 Ga, and extend from the outer part of Godthåbsfjord in the south-west to the margin of the Inland Ice in the north-east, but they might not have a common geological history (Friend & Nutman 2005). The Tre Brødre terrane is mainly represented by the Ikkatoq gneiss and occurs in close spatial relationship with the Færingehavn terrane, and also as a pronounced thrust unit along the Qarliit Nunaat thrust between the Færingehavn and Tasiusarsuaq terranes (Fig. 1; Nutman et al. 1989). The terrane boundaries in the inner fjord region near the Inland Ice margin are less well con- strained; the Tre Brødre terrane extends into the region from the south-west, the Kapisilik terrane is defined from the northern and eastern part and borders the Tasiusarsuaq terrane to the south and possibly to the east. The terrane accretion is believed to have taken place in two events. The first terrane accretion is defined from the northern part of the region, and possi- bly involves the Isukasia, Kapisilik and Akia terranes. The thermal event stitching these terranes is dated to c. 2.99–2.95 Ga (Fig. 2; Hanmer et al. 2002; Friend & Nutman 2005). The second accretion phase of the major continental blocks is believed to have occurred at around 2.725–2.71 Ga. This second event is well described, and in - cludes anatexis and emplacement of continental crust-derived granites, which are associated with contemporaneous meta- morphism (Friend et al. 1996). Figure 2 outlines regional plutonic, metamorphic and su - pracrustal events. Individual terranes were formed during rela- tively short time periods with active geological processes of creation and recycling of continental crust, and most of the ter- ranes follow a similar pattern of development. The first plutonic events consisted of primitive magmas and produced to na - lite–trondhjemite–granodiorite (TTG) and dioritic gn eisses. Younger, more evolved granitic magmas were often intruded simultaneously with high-grade metamorphism. This develop- ment may reflect a stabilisation of the individual terranes. 73 New zircon ages from the Tasiusarsuaq terrane, southern West Greenland Tomas Næraa and Anders Scherstén © GEUS, 2008. Geological Survey of Denmark and Greenland Bulletin 15, 73–76. Available at: www.geus.dk/publications/bull Greenland Tre Brødre Færingehavn terrane Tasiusarsuaq terrane terrane ‘Nunatak 1390’ Nuuk Serm ilik 50°52° 64° 25 km Qarliit Nunaat thrust Bu kse fjo rde n Go dt hå bs fjo rd ? Ameralik Akia terrane Kapisilik terrane Nuna- taarsuq Meso–Neoarchaean granites Meso–Neoarchaean orthogneiss and granitic rocks. Dots: granulite facies Supracrustal belts (undifferentiated) Anorthosite-gabbro complexes Qôrqut granite complex Terrane boundary Palaeoproterozoic fault Structural trend line Eoarchaean gneiss 499227 499228 499161 499221 Sample location 514832 Fig. 1. Geological map of the southern Nuuk region (modified from Escher & Pulvertaft 1995), with locations and numbers of samples discussed in this paper. The Tasiusarsuaq terrane The Tasiusarsuaq terrane is dominated by 2.92–2.84 Ga tonalite and granodiorite gneisses (Friend & Nutman 2001; Crowley 2002). The main regional metamorphism is of amphibolite facies grade, however, granuite facies or retro- gressed granulite facies rocks are present in large areas (Fig. 1). Peak granulite facies conditions have been dated at 2.81–2.79 Ga (Pidgeon & Kalsbeek 1978; Crowley 2002). Greenschist facies rocks have been observed on ‘Nunatak 1390’, which we in the present article suggest is part of the Tasiusarsuaq terrane. Northern boundary of the Tasiusarsuaq terrane The north-western boundary of the Tasiusarsuaq terrane in the Buksefjorden area (Fig. 1) has been described in some detail. Narrow mylonite zones define a boundary between granulite facies gneisses of the Tasiusarsuaq terrane and pro- grade amphibolite facies gneisses of the Tre Brødre terrane. Prograde amphiolite facies metamorphism dated at around 2.74–2.70 Ga is presumably related to the terrane accretion and has not been recorded within the Tasiusarsuaq terrane itself (Crowley 2002), which was thrust upon the Tre Brødre terrane during orogenesis (Nutman et al. 1989). The eastern extension of the northern Tasiusarsuaq terrane boundary remains speculative. Here we present zircon U-Pb age data from six selected rock samples collected in the vicinity of the proposed eastern extension of the northern Tasiusarsuaq ter- rane boundary. Tasiusarsuaq tonalite A migmatised tonalite representative of the basement gneisses in the northern part of the terrane was collected for zircon U- Pb age determination (Fig. 1; sample 499221 in the Survey numbering system). The rock contains lenses of amphibolite and has abundant migmatite veins. Palaeosome was separated from neosome by sawing slabs of each, and both sub-samples were dated. The internal zircon textures are very similar in both palaeosome and neosome. Zircon grains have complex internal textures often with dark shells separating the core from the rim (Fig. 3a, b). The cores display igneous oscilla- tory zonation to homogeneous textures. The age data for the palaeosome are concordant within 10% for 63 spots (n = 65), and regress to an essentially zero age lower intercept. We therefore use the 207Pb/206Pb ratios, which yield an age of 2.868 ± 0.004 Ga (Fig. 4a; n = 62/65, ± 2σ, MSWD = 1.5). The outliers are slightly younger, presumably due to ancient Pb loss. The neosome data are concordant within 10% for 55 spots (n = 57; Fig. 4b); close inspection of the 207Pb/206Pb age data indicates that two ages at c. 2.87 and c. 2.80 Ga can be differentiated (Fig. 4b). However, this is speculative as the data suffer from insufficient precision in conjunction with an apparent ‘age smear’ as noted in the palaeosome, presumably due to ancient Pb-loss. Nevertheless, the two suggested ages at c. 2.87 and c. 2.80 Ga are in excellent agreement with the palaeosome date and known ages for granulite facies meta- morphism in the region (Pidgeon & Kalsbeek 1978; Crowley 2002). Discordant granite sheets 2.72 Ga old cut the gneisses in this part of the Tasiusarsuaq terrane (Friend et al. 1996), but no such age component was found in this rock. ‘Nunatak 1390’ and Nunataarsuk ‘Nunatak 1390’ comprises rocks with some of the best pre- served primary textures and structures found in the Tasiusarsuaq terrane. In brief, ‘Nunatak 1390’ contains a vol- canic series with variably preserved pillow lava sequences that are succeeded by melanocratic-ultramafic ash and rocks with flow structures (Stendal & Scherstén 2007). Rhyolitic rocks 74 Age (Ga) 3.03.25 2.52.75 Metamorphism, amphibolite/granulite grade Emplacement of granite Qôrqut granite complex Emplacement of dioritic and TTG gneiss Terrane accretion Deposition of supracrustal rocks Tre Brødre Isukasia Færingehavn Tasiusarsuaq Akia Kapisilik Supracrustal units22 3311 2 31 Fig. 2. Time lines for igneous and metamorphic events in the Nuuk region. Numbers for the supracrustal units refer to (1) Ivisaartoq and Qussuk, (2) ‘Nunatak 1390’ and (3) Storø. Data from Pidgeon & Kals beek (1978), Friend & Nutman (2001), Crowley (2002), Hanmer et al. (2002), Friend & Nutman (2005), Polat et al. (2008), Nutman & Friend (2007), Garde (2007) and Knudsen et al. (2007). a b c d e f Fig. 3. Backscattered electron images of representative zircon grains for each dated sample. Zircons were separated, picked, mounted in epoxy and polished to expose the central part of the grains. Scale bars = 50 µm. (a) 499221 palaeosome; (b) 499221 neosome; (c) 499161; (d) 514832; (e) 499227; (f) 499228. are intercalated with the pillow lava sequences, and were interpreted as ignimbrites by Stendal & Scherstén (2007). In 2007, however, intrusive discordant dykes that appear to feed into the rhyolites were discovered, and it may be that some or all of these rocks are significantly younger sills. Zircons were extracted from a rhyolite sample (499161) for dating, and in spite of the alternative interpretations either date the pillow lava sequence or provide a minimum age for it. The zircon grains have bright homogeneous cores and darker rims and/or zones within the cores (Fig. 3c). The dark areas may extend into the bright areas and contain minor amounts of Ca and Al, which could indicate destabilisation and partial zircon breakdown. Of 48 age determinations 43 define a recent Pb loss line and a 207Pb/206Pb age of 2.873 ± 0.005 Ga (n = 43/48, ± 2σ, MSWD = 1.7). One grain (two analyses) is concordant at c. 3.2 Ga. We interpret the 2.873 ±0.005 Ga age to represent the time of crystallisation of the rhyolite. The origin of the 3.2 Ga old grain is unclear, but we speculate that it is inherited from rocks of this age. Gneisses with palaeo- somes of this age have been found farther to the west in the Tasiusarsuaq terrane (Næraa & Scherstén, unpublished data). Eastern Nunataarsuk is characterised by an anorthosite- amphibolite-granite succession. Granite sample 514832 for geochronology is from an area where granite and slices of amphibolite with local pillow structures in low-strain areas form the major successions; the granite-amphibolite contact is either an irregular and intrusive or a boudinaged contact parallel to the foliation, and the granite is interpreted as late to posttectonic relative to a locally defined S1 foliation (Kolb & Stendal 2007). Zircon grains from the granite have oscil- latory-zoned cores surrounded by thin homogeneous rims (Fig. 3d). Oscillatory-zoned grains plot along a recent Pb-loss line and yielded a 207Pb/206Pb age of 2.852 ± 0.005 Ga (n = 30/33, ± 2σ, MSWD = 0.30, concordant within 10%), which we interpret as the intrusive age of the granite. The rims were generally too narrow to be analysed with our stan- dard 20 µm laser spot; however, three analyses gave a poorly defined upper intercept age of 2.58 ± 0.04 Ga. Veined gneiss and cross-cutting tonalitic schist In the southern part of the region, a slightly schistose tonalite (499227) has an intrusive cross-cutting relationship to a veined tonalitic gneiss (499228) with amphibolite enclaves. Abun dant veins of granitic pegmatite appear to have formed by partial melting of the veined gneiss along amphibolite bou din necks, along the foliation and along the tonalite- gneiss contacts. The zircon grains from the tonalite (499227) have complex internal textures. Many of them have oscilla- tory zoned cores and homogeneous rims and/or internal zones (Fig. 3e). A total of 49 of 60 U-Pb zircon age determi - na - tions define a 207Pb/206Pb age of 2.719 ± 0.005 Ga (n = 49/60, ± 2σ, MSWD = 2.2, concordant from 91 to 113%). The remaining 11 age determinations form an array towards older ages and presumably represent ancient Pb-loss in grains as old as c. 2.859 ± 0.014 Ga (single grain 207Pb/206Pb age; Fig. 4e). The zircon grains from the veined gneiss (499228) generally have thick, homogeneous, bright rims surrounding cores that are highly cracked and commonly metamict; only a few cores show remains of oscillatory zonation (Fig. 3f ). The spread in ages indicates ancient lead loss from 2.85 to 2.7 Ga with no obvious 207Pb/206Pb age plateau (Fig. 4f ); one grain was dated at c. 3.1 Ga. The interpretation of the age data remains speculative, but given the altered appearance, the metamorphic rims and the relationship with the tonalite (499227), it seems reasonable to assume a metamorphic over- printing of the rock at c. 2.72 Ga, perhaps related to the accretion with the Tre Brødre terrane. 75 499228 499221 neosome b 499227 3.00 20 7 P b/ 20 6 P b ag e (G a) 2.90 2.80 2.70 3.00 20 7 P b/ 20 6 P b ag e (G a) 20 7 P b/ 20 6 P b ag e (G a) 2.50 2.90 2.80 2.70 2.60 499221 paleosome a e f 514832499161 dc 2.90 2.66 2.82 2.86 2.78 2.74 2.70 Fig. 4. Zircon 207Pb/206Pb ages. All errors presented at 2 sigma levels. (a) Sample 499221 palaeosome. The red bars represent data used to cal- culate crystallisation age (green horizontal bar). Five blue bars are rejected due to assumed ancient lead loss. (b) Sample 499221 neosome. The upper green horizontal bar represents the crystallisation age for the paleosome and the lower green horizontal bar represents the known granulite facies event for the Tasiusarsuaq terrane. (c, d) Samples 499161 and 514832. The red bars represent data used to calculate crystallisation ages (green horizontal bar) and the blue bars were rejected due to assumed ancient lead loss. (e) Sample 499227: Red bars represent data used to calculate crystallisation or metamorphic age (green horizontal bar), and the blue bars are assumed to be inherited from an older source. (f) Sample 499228. The red bars define an ancient lead loss trend with age components as in sample 499227. Age determinations were carried out on the Element 2 Laser ICPMS at GEUS. Detailed analytical proce- dures are described in Frei et al. (2006). Discussion and summary The zircon crystallisation age of 2.87–2.85 Ga for samples 499221, 499161 and 514832 and a somewhat speculative metamorphic age at 2.80 Ga for sample 499221 correlate very well with known crystallisation ages and granulite facies events within the Tasiusarsuaq terrane. These ages are signif- icantly younger than ages of rocks from the Kapisilik terrane but older than those of the Tre Brødre terrane. It is thus tempting to ascribe these areas to the Tasiusarsuaq terrane. To include the ‘Nunatak 1390’ is straightforward, while includ- ing Nunataarsuk implies a major northerly extension of the terrane that requires confirmation by further work. Age data alone naturally do not justify the inclusion of these areas into the Tasiusarsuaq terrane, but it appears to be the most straightforward option based on the available information. More importantly, the ages obtained from the rhyolite and granite at ‘Nunatak 1390’ (2.873 Ga) and Nunataarsuk (2.853 Ga) provide minimum extrusive ages for the associ- ated mafic greenstones and might reflect the onset of crustal growth in this block. Furthermore, the emerging terrane con- figuration might indicate that the Tasiusarsuaq terrane accreted with the Kapisilik terrane in the north-east and with the Tre Brødre terrane in the south-west. The ages from the schistose tonalite (499227) and the veined gneiss (499228) are too young to readily represent known events within the Tasiusarsuaq terrane. The inferred metamorphic ages rather correlate with the thermal event associated with prograde amphibolite facies metamorphism within the Tre Brødre terrane. However, situated well within the Tasiusarsuaq terrane these rocks would not have experi- enced a prograde metamorphic path during terrane accre- tion. Furthermore, there is evidence for ≥2.85 Ga old zircons, which are too old to readily fit with known ages of the Tre Brødre terrane. We speculate that the northern part of the Tasiusarsuaq terrane may represent a nappe complex, and that the investigated rocks either represent a tectonic window exposing footwall rocks that experienced prograde metamor- phism and partial melting during overthrusting, or that flu- ids released from footwall-induced zircon Pb-loss and/or partial melting in the overriding nappe. References Coney, P.J., Jones, D.L. & Monger, J.W. 1980: Cordilleran suspect terranes. Nature 288, 329–332. Crowley, J.L. 2002: Testing the model of late Archean terrane accretion in southern West Greenland: a comparison of the timing of geological events across the Qarliit nunaat fault, Buksefjorden region. Precambrian Research 116, 57–79. Escher, J.C. & Pulvertaft, T.C.R. 1995: Geological map of Greenland, 1:2 500 000, Copenhagen: Geological Survey of Greenland. Frei, D., Hollis, J.A., Gerdes, A., Harlov, D., Karlsson, C., Vasquez, P., Franz, G., Johansson, L. & Knudsen, C. 2006: Advanced in situ geochronolog- ical and trace element microanalyses by laser ablation techniques. Geological Survey of Denmark and Greenland Bulletin 10, 25–28. Friend, C.R.L. & Nutman, A.P. 2001: U-Pb zircon study of tectonically bounded blocks of 2940–2840 Ma crust with different metamorphic his- tories, Paamiut region, South-West Greenland: implications for the tec- tonic assembly of the North Atlantic craton. Precambrian Research 105, 143–164. Friend, C.R.L. & Nutman, A.P. 2005: New pieces to the Archaean terrane jigsaw puzzle in the Nuuk region, southern West Greenland: steps in transforming a simple insight into a complex regional tectonothermal model. Journal of the Geological Society (London) 162, 147–162. Friend, C.R.L., Nutman, A.P., Baadsgaard, H., Kinny, P.D. & McGregor, V.R. 1996: Timing of late Archaean terrane assembly in the Nuuk region, southern West Greenland. Earth and Planetary Science Letters 142, 353–365. Garde A.A. 2007: A mid-Archaean island arc complex in the eastern Akia terrane, Godthåbsfjord, southern West Greenland. Journal of the Geological Society (London) 164, 565–579. Knudsen, C., van Gool, J.A.M., Østergaard, C., Hollis, J.A., Rink-Jørgensen, M., Persson, M. & Szilas, K. 2007: Gold-hosting supracrustal rocks on Storø, southern West Greenland: lithologies and geological environ- ment. Geological Survey of Denmark and Greenland Bulletin 13, 41–44. Kolb, J. & Stendal H. 2007: Geological environments and hydrothermal mineralisation in Nunataarsuk, Qarliit Nunaat and Ameralik, Nuuk region, SW Greenland – a field report 2007. Mineral resource assess- ment of the Archaean Craton (66° to 63°30´N), SW Greenland. Contribution no. 2. Danmarks og Grønlands Geologiske Undersøgelse Rapport 2007/58, 44 pp. Nutman, A.P. & Friend, C.R.L. 2007: Adjacent terranes with ca. 2715 and 2650 Ma high-pressure metamorphic assemblages in the Nuuk region of the North Atlantic Craton, southern West Greenland: Complexities of Neoarchaean collisional orogeny. Precambrian Research 155, 159–203. Nutman, A.P., Friend, C.R.L., Baadsgaard, H., & McGregor, V.R. 1989: Evolution and assembly of Archaean gneiss terranes in the Godt håbs - fjord region, southern West Greenland: structural, metamorphic and iso- topic evidence. Tectonics 8, 573–589. Pidgeon, R.T. & Kalsbeek, F. 1978: Dating of igneous and metamorphic events in the Fiskenaesset region of southern West Greenland. Canadian Journal of Earth Sciences 15, 2021–2025. Polat A., Frei, R., Appel, P.W.U., Dilek, Y., Fryer, B., Ordóñez-Calderón, J.C. & Yang, Z. 2008: The origin and composition of Mesoarchean oceanic crust: Evidence from the 3075 Ma Ivisaartoq greenstone belt, SW Greenland. Lithos 100, 293–321. Stendal, H. & Scherstén, A. 2007: A well-preserved bimodal Archaean vol- canic succession in the Tasiusarsuaq terrane, South-West Greenland. Geological Survey of Denmark and Greenland Bulletin 13, 53–56. 76 Authors’ address Geological Survey of Denmark and Greenland, Øster Voldgade 10, DK-1350 Copenhagen K, Denmark. E-mail: tomn@geus.dk