Rapid shifting of a deep magmatic source at Fagradalsfjall volcano, Iceland
Author(s)
Language
English
Obiettivo Specifico
4V. Processi pre-eruttivi
Status
Published
JCR Journal
JCR Journal
Peer review journal
Yes
Journal
Issue/vol(year)
/609 (2022)
ISSN
0028-0836
Publisher
Nature PG
Pages (printed)
529–534
Date Issued
September 2022
Alternative Location
Subjects
Abstract
Recent Icelandic rifting events have illuminated the roles of centralized crustal magma reservoirs and lateral magma transport1-4, important characteristics of mid-ocean ridge magmatism1,5. A consequence of such shallow crustal processing of magmas4,5 is the overprinting of signatures that trace the origin, evolution and transport of melts in the uppermost mantle and lowermost crust6,7. Here we present unique insights into processes occurring in this zone from integrated petrologic and geochemical studies of the 2021 Fagradalsfjall eruption on the Reykjanes Peninsula in Iceland. Geochemical analyses of basalts erupted during the first 50 days of the eruption, combined with associated gas emissions, reveal direct sourcing from a near-Moho magma storage zone. Geochemical proxies, which signify different mantle compositions and melting conditions, changed at a rate unparalleled for individual basaltic eruptions globally. Initially, the erupted lava was dominated by melts sourced from the shallowest mantle but over the following three weeks became increasingly dominated by magmas generated at a greater depth. This exceptionally rapid trend in erupted compositions provides an unprecedented temporal record of magma mixing that filters the mantle signal, consistent with processing in near-Moho melt lenses containing 107-108 m3 of basaltic magma. Exposing previously inaccessible parts of this key magma processing zone to near-real-time investigations provides new insights into the timescales and operational mode of basaltic magma systems.
Sponsors
The NordSIMS ion microprobe facility acknowledges support by the Swedish Research Council (grant no. 2017-00671), the Swedish Museum of Natural History and the University of Iceland; this is NordSIMS publication no. 713.
The involvement of S.A.H. was partly in relation to H2020 project EUROVOLC, funded by the European Commission (grant no. 731070).
This work was supported by the Icelandic Research Fund, grant no. 228933-051.
A.A. ackowledges funding from Italian Ministero Istruzione Università e Ricerca (Miur), grant PRIN2017-2017LMNLAW
The involvement of S.A.H. was partly in relation to H2020 project EUROVOLC, funded by the European Commission (grant no. 731070).
This work was supported by the Icelandic Research Fund, grant no. 228933-051.
A.A. ackowledges funding from Italian Ministero Istruzione Università e Ricerca (Miur), grant PRIN2017-2017LMNLAW
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Shorttle, O. & Maclennan, J. Compositional trends of Icelandic basalts: implications for short-length scale lithological heterogeneity in mantle plumes. Geochem. Geophys. Geosyst. 12, Q11008 (2011).
Weir, N. R. W. et al. Crustal structure of the northern Reykjanes Ridge and Reykjanes Peninsula, southwest Iceland. J. Geophys. Res.: Solid Earth 106, 6347–6368 (2001).
Spiegelman, M. & Kelemen, P. B. Extreme chemical variability as a consequence of channelized melt transport. Geochem. Geophys. Geosyst. 4, 1055 (2003).
Jackson, M. G. & Dasgupta, R. Compositions of HIMU, EM1, and EM2 from global trends between radiogenic isotopes and major elements in ocean island basalts. Earth Planet. Sci. Lett. 276, 175–186 (2008).
Colman, A., Sinton, J. M. & Rubin, K. H. Magmatic processes at variable magma supply along the Galápagos Spreading Center: Constraints from single eruptive units. J. Petrol. 57, 981–1018 (2016).
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Clague, D. A. et al. Chemical variations in the 1998, 2011, and 2015 lava flows from axial seamount, Juan de Fuca Ridge: cooling during ascent, lateral transport, and flow. Geochem. Geophys. Geosyst. 19, 2915–2933 (2018).
Greene, A. R. et al. Temporal geochemical variations in lavas from Kilauea’s Pu’u ’O’o eruption (1983-2010): cyclic variations from melting of source heterogeneities. Geochem. Geophys. Geosyst. 14, 4849–4873 (2013).
Vlastélic, I. & Pietruszka, A. J. in Active Volcanoes of the Southwest Indian Ocean: Piton de la Fournaise and Karthala (eds Bachelery, P. et al.) 185–201 https://doi.org/10.1007/978-3-642-31395-0_11 (Springer, 2016).
Gansecki, C. et al. The tangled tale of Kīlauea’s 2018 eruption as told by geochemical monitoring. Science 366, eaaz0147 (2019).
Mutch, E. J. F., Maclennan, J., Shorttle, O., Edmonds, M. & Rudge, J. F. Rapid transcrustal magma movement under Iceland. Nat. Geosci. 12, 569–574 (2019).
Jackson, M. D., Blundy, J. & Sparks, R. S. J. Chemical differentiation, cold storage and remobilization of magma in the Earth’s crust.
34. Kamber, B. S. & Gladu, A. H. Comparison of Pb purification by anion-exchange resin
methods and assessment of long-term reproducibility of Th/U/Pb ratio measurements by
quadrupole ICP-MS. Geostand. Geoanalytical Res. 33, 169–181 (2009).
35. Baker, J., Peate, D., Waight, T. & Meyzen, C. Pb isotopic analysis of standards and samples
using a 207Pb-204Pb double spike and thallium to correct for mass bias with a
double-focusing MC-ICP-MS. Chem. Geol. 211, 275–303 (2004).
36. Pin, C., Gannoun, A. & Dupont, A. Rapid, simultaneous separation of Sr, Pb, and Nd by
extraction chromatography prior to isotope ratios determination by TIMS and
MC-ICP-MS. J. Anal. At. Spectrom. 29, 1858–1870 (2014).
37. Weis, D. et al. High-precision isotopic characterization of USGS reference materials by
TIMS and MC-ICP-MS. Geochem. Geophys. Geosyst. 7, 1–30 https://doi.org/10.1029/
2006GC001283 (2006).
38. Caracciolo, A. et al. Oxygen isotope evidence for progressively assimilating trans-crustal
magma plumbing systems in Iceland. Geology 50, 796–800 (2022).
39. Shishkina, T. A., Botcharnikov, R. E., Holtz, F., Almeev, R. R. & Portnyagin, M. V. Solubility of
H2O- and CO2-bearing fluids in tholeiitic basalts at pressures up to 500MPa. Chem. Geol.
277, 115–125 (2010).
40. Oppenheimer, C. & Kyle, P. R. Probing the magma plumbing of Erebus volcano,
Antarctica, by open-path FTIR spectroscopy of gas emissions. J. Volcanol. Geotherm. Res.
177, 743–754 (2008).
41. Burton, M., Allard, P., Mure, F. & la Spina, A. Magmatic gas composition reveals the source
depth of slug-driven strombolian explosive activity. Science 317, 227–230 (2007).
42. Aiuppa, A. et al. The 2007 eruption of Stromboli volcano: insights from real-time
measurement of the volcanic gas plume CO2/SO2 ratio. J. Volcanol. Geotherm. Res. 182,
221–230 (2009).
43. Ilyinskaya, E. et al. Degassing regime of Hekla volcano 2012-2013. Geochim. Cosmochim.
Acta 159, 80–99 (2015).
44. Liu, E. J. et al. Aerial strategies advance volcanic gas measurements at inaccessible,
strongly degassing volcanoes. Sci. Adv. 6, eabb9103 (2020).
45. Caracciolo, A. et al. Temporal evolution of magma and crystal mush storage conditions in
the Bárðarbunga-Veiðivötn volcanic system, Iceland. Lithos 352–353, 105234 (2020).
46. Neave, D. A., Namur, O., Shorttle, O. & Holtz, F. Magmatic evolution biases basaltic
records of mantle chemistry towards melts from recycled sources. Earth Planet. Sci. Lett.
520, 199–211 (2019).
47. Putirka, K. D., Mikaelian, H., Ryerson, F. & Shaw, H. New clinopyroxene-liquid
thermobarometers for mafic, evolved, and volatile-bearing lava compositions, with
applications to lavas from Tibet and the Snake River Plain, Idaho. Am. Mineralogist 88,
1542–1554 (2003).
48. van der Meer, Q. H. A., Bali, E., Guðfinnsson, G. H., Kahl, M. & Rasmussen, M. B. Warm and
slightly reduced mantle under the off-rift Snæfellsnes Volcanic Zone, Iceland. J. Petrol.
https://doi.org/10.1093/petrology/egab057 (2021).
49. Nikolaev, G. S., Ariskin, A. A., Barmina, G. S., Nazarov, M. A. & Almeev, R. R. Test of the
Ballhaus–Berry–Green Ol–Opx–Sp oxybarometer and calibration of a new equation for
estimating the redox state of melts saturated with olivine and spinel. Geochem. Int. 54,
301–320 (2016).
50. Putirka, K. D. Thermometers and barometers for volcanic systems. Rev. Mineral.
Geochem. 69, 61–120 (2008).
51. Neave, D. A. & Putirka, K. D. A new clinopyroxene-liquid barometer, and implications for
magma storage pressures under Icelandic rift zones. Am. Mineralogist 102, 777–794
(2017).
52. Hill, E., Blundy, J. D. & Wood, B. J. Clinopyroxene-melt trace element partitioning and the
development of a predictive model for HFSE and Sc. Contributions Mineral. Petrol. 161,
423–438 (2011).
53. Putirka, K. Clinopyroxene + liquid equilibria to 100 kbar and 2450 K. Contributions
Mineral. Petrol. 135, 151–163 (1999).
54. Neave, D. A. et al. Clinopyroxene-liquid equilibria and geothermobarometry in natural
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