TY - JOUR
T1 - Hydrothermally-altered mafic crust as source for early Earth TTG
T2 - Pb/Hf/O isotope and trace element evidence in zircon from TTG of the Eoarchean Saglek Block, N. Labrador
AU - Vezinet, A.
AU - Pearson, D. G.
AU - Thomassot, E.
AU - Stern, R. A.
AU - Sarkar, C.
AU - Luo, Y.
AU - Fisher, C. M.
N1 - Funding Information:
The field campaign was funded by the Agence Nationale de la Recherche (Grant ANR-11-JS56-0012 “DESIR”) to E. Thomassot. Analyses were funded by the NSERC Discovery and CFREF grants to D.G. Pearson. This paper represents Metal Earth contribution MERC-ME-2018-039. We are grateful to E. Bell and R. Bolhar for constructive reviews that have improved this contribution. M. Bickle is thanked for thorough editorial handling.
Funding Information:
The field campaign was funded by the Agence Nationale de la Recherche (Grant ANR-11-JS56-0012 “DESIR”) to E. Thomassot. Analyses were funded by the NSERC Discovery and CFREF grants to D.G. Pearson. This paper represents Metal Earth contribution MERC-ME-2018-039. We are grateful to E. Bell and R. Bolhar for constructive reviews that have improved this contribution. M. Bickle is thanked for thorough editorial handling. Appendix A
Publisher Copyright:
© 2018 Elsevier B.V.
PY - 2018/12/1
Y1 - 2018/12/1
N2 - The North Atlantic craton hosts extensive exposures of Eoarchean crust, spread through areas of Western Greenland and Northern Labrador (Canada). Of these two areas, the crust of the Saglek Block of Northern Labrador has received far less attention from the scrutiny of modern analytical methods than its better documented Western Greenland equivalent, the Itsaq Gneiss Complex. Here, we present the first coupled trace element and U–Pb/Hf/O isotope dataset for zircon from an early TTG component of the Saglek Block. The combination of textural, elemental and isotopic in-situ analyses enables selection of the least disturbed zircon domains. From these it is demonstrated that the oldest felsic remnants exposed in the Saglek Block were emplaced 3.86 ± 0.01 billion yr (Ga) ago through partial melting of basaltic protoliths. The Hf isotope signature of the oldest zircon domains from the Saglek Block TTG indicates derivation from sources that did not undergo substantial Lu/Hf fractionation, resulting in initial Hf isotope compositions that are chondritic within uncertainty. The oxygen isotope ratios of the least disturbed zircon portions vary from 5.38 ± 0.16‰ to 6.64 ± 0.19‰ and document the interaction of the TTG protoliths with Earth's early hydrosphere at low temperature (≤150–200 °C) prior partial melting in the Eoarchean. The results support TTG production in the Eoarchean from variably hydrated basaltic protoliths.
AB - The North Atlantic craton hosts extensive exposures of Eoarchean crust, spread through areas of Western Greenland and Northern Labrador (Canada). Of these two areas, the crust of the Saglek Block of Northern Labrador has received far less attention from the scrutiny of modern analytical methods than its better documented Western Greenland equivalent, the Itsaq Gneiss Complex. Here, we present the first coupled trace element and U–Pb/Hf/O isotope dataset for zircon from an early TTG component of the Saglek Block. The combination of textural, elemental and isotopic in-situ analyses enables selection of the least disturbed zircon domains. From these it is demonstrated that the oldest felsic remnants exposed in the Saglek Block were emplaced 3.86 ± 0.01 billion yr (Ga) ago through partial melting of basaltic protoliths. The Hf isotope signature of the oldest zircon domains from the Saglek Block TTG indicates derivation from sources that did not undergo substantial Lu/Hf fractionation, resulting in initial Hf isotope compositions that are chondritic within uncertainty. The oxygen isotope ratios of the least disturbed zircon portions vary from 5.38 ± 0.16‰ to 6.64 ± 0.19‰ and document the interaction of the TTG protoliths with Earth's early hydrosphere at low temperature (≤150–200 °C) prior partial melting in the Eoarchean. The results support TTG production in the Eoarchean from variably hydrated basaltic protoliths.
KW - Early Earth
KW - Eoarchean Saglek Block
KW - low-T alteration
KW - zircon trace element
KW - zircon U–Pb/Hf/O isotope
UR - http://www.scopus.com/inward/record.url?scp=85054187135&partnerID=8YFLogxK
U2 - 10.1016/j.epsl.2018.09.015
DO - 10.1016/j.epsl.2018.09.015
M3 - Article
AN - SCOPUS:85054187135
VL - 503
SP - 95
EP - 107
JO - Earth & Planetary Science Letters
JF - Earth & Planetary Science Letters
SN - 0012-821X
ER -