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March 25, 2026Geosciences1 citationsOpen Access

Fluorapatite from a Pegmatite with Miarolitic Cavities in the Larsemann Hills, East Antarctica: ID-TIMS U-Pb Ages and LA-ICP-MS Trace-Element Constraints on the Late Pan-African Orogenic Evolution

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IBIvan A. BabenkoSaint Petersburg Mining UniversityNRNailya G. RizvanovaInstitute of Precambrian Geology and GeochronologySSSergey G. SkublovInstitute of Precambrian Geology and Geochronology

Key Points

  • To investigate the geochemistry and age of fluorapatite from pegmatites in the Larsemann Hills of Antarctica.
  • Conducted geochemical analysis of fluorapatite
  • Performed U-Pb dating using ID-TIMS and LA-ICP-MS
  • Examined trace-element signatures in pegmatite crystals
  • Fluorapatite crystallization ages were determined as 519 ± 4 Ma and 521 ± 31 Ma.
  • Crystals contain high rare earth element (REE) concentrations and low strontium (Sr) levels.
  • The pegmatite is suggested to have formed from the anatexis of Broknes paragneisses in a fluid-rich system.

Abstract

Pegmatites with miarolitic cavities have not previously been reported from the Larsemann Hills, East Antarctica, and their age and origin remain poorly constrained. We report the first geochemical and geochronological data for fluorapatite from a newly discovered pegmatite with miarolitic cavities in the Larsemann Hills. Large Fe-rich fluorapatite crystals (up to 5 cm) contain abundant oriented monazite-(Ce) inclusions and display elevated REE (1397–7966 ppm), relatively high Y (945–4192 ppm), and low Sr (52.2–83.5 ppm). Their trace-element signatures plot within the fields of partial melts, high-grade metamorphic rocks, and evolved fluid-rich magmatic systems. U–Pb dating of fluorapatite yields concordant ages of 519 ± 4 Ma (ID-TIMS) and 521 ± 31 Ma (LA-ICP-MS), indicating crystallization during the D4 stage of the Pan-African orogeny. The isotopic equilibrium between apatite and monazite inclusions suggests synchronous formation and late-stage fluid overprinting. Combined geological, geochemical, and isotopic evidence shows that the pegmatite formed in situ as a product of anatexis of the Broknes paragneisses and evolved within a volatile-rich magmatic–hydrothermal system. These results provide the first direct age constraints on pegmatites with miarolitic cavities in Antarctica and shed new light on the final stages of East Gondwana assembly.

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Cite This Study

Babenko et al. (2026) studied this question.

synapsesocial.com/papers/69c37b11b34aaaeb1a67d200https://doi.org/10.3390/geosciences16030133
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