Marc C. Halfar, B. Peters, J. Day, M. Schönbächler
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Besides this signature, Mascarene lavas may preserve influences from sources with distinct compositions, including: (1) shallow continental crust preserved by Archaean-aged zircons in Mauritian trachytes; (2) deeper continental crust components preserved by slightly elevated 87 Sr/ 86 Sr and 208 Pb/ 206 Pb ratios in lavas from the Piton des Neiges volcano on La Réunion; and (3) an isotopically depleted component resulting from migration of Central Indian Ridge (CIR) material. We use major and trace element compositions, as well as new Sr and Pb isotope data of basaltic lavas from all three Mascarene Islands to investigate their mantle sources in terms of their relationship to well-characterized mantle endmember compositions. The trace element data reveals distinct patterns for each island. Rodrigues lavas are the most enriched in the highly incompatible trace elements, which likely reflects a lower degree of partial melting. Combined Pb-Sr isotopic compositions indicate that Mauritian Older Series lavas have a stronger Réunion-type component, while those from the Mauritian Younger and Intermediate Series, along with Rodrigues, display a contribution of a more depleted component. Lead isotopes further suggest the contribution of an enriched component in the Rodrigues basalts. Isotope mixing models reveal that the Pb isotopic signature of Rodrigues rocks is","PeriodicalId":124249,"journal":{"name":"Goldschmidt2021 abstracts","volume":"782 1","pages":"0"},"PeriodicalIF":0.0000,"publicationDate":"2023-08-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"1","resultStr":"{\"title\":\"An isotopically enriched mantle component in the source of Rodrigues, Réunion volcanic hotspot\",\"authors\":\"Marc C. Halfar, B. Peters, J. Day, M. 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引用次数: 1
摘要
位于西印度洋的马斯克林群岛,包括拉拉西姆、毛里求斯和罗德里格斯,提供了地球上最原始的内部和原始历史记录之一。来自这些岛屿的洋岛玄武岩(OIB)对rsamuunion热点进行了采样,其同位素组成的范围非常有限,通常与地幔阵列的震源带(FOZO)重叠。除了这一特征外,马斯卡林熔岩还可能保留了不同成分来源的影响,包括:(1)毛里求斯粗叶岩中太古时代的锆石保存了浅层大陆地壳;(2) La r山Piton des Neiges火山熔岩中87 Sr/ 86 Sr和208 Pb/ 206 Pb比值略微升高,保存了更深层次的大陆地壳成分;(3)中印度脊(CIR)物质迁移导致的同位素衰竭成分。本文利用马斯克林三个岛玄武岩熔岩的主微量元素组成,以及新的Sr和Pb同位素数据,研究了它们的地幔来源与特征明确的地幔端元组成的关系。微量元素数据揭示了每个岛屿的不同模式。罗德里格斯熔岩富含高度不相容的微量元素,这可能反映了较低程度的部分熔融。综合Pb-Sr同位素组成表明,毛里求斯老系列火山岩具有较强的r联合型成分,而毛里求斯年轻和中期系列火山岩以及Rodrigues火山岩则具有较弱的r联合型成分。铅同位素进一步表明,罗德里格斯玄武岩中有一种富集成分。同位素混合模型显示,罗德里格斯岩石的Pb同位素特征为
An isotopically enriched mantle component in the source of Rodrigues, Réunion volcanic hotspot
The Mascarene Islands in the western Indian Ocean, encompassing La Réunion, Mauritius and Rodrigues, provide one of Earth’s most pristine records of its deep interior and primordial history. Ocean island basalts (OIB) from these islands, which sample the Réunion hotspot, exhibit a remarkably limited range in isotopic compositions that generally overlap the focal zone (FOZO) in the mantle array. Besides this signature, Mascarene lavas may preserve influences from sources with distinct compositions, including: (1) shallow continental crust preserved by Archaean-aged zircons in Mauritian trachytes; (2) deeper continental crust components preserved by slightly elevated 87 Sr/ 86 Sr and 208 Pb/ 206 Pb ratios in lavas from the Piton des Neiges volcano on La Réunion; and (3) an isotopically depleted component resulting from migration of Central Indian Ridge (CIR) material. We use major and trace element compositions, as well as new Sr and Pb isotope data of basaltic lavas from all three Mascarene Islands to investigate their mantle sources in terms of their relationship to well-characterized mantle endmember compositions. The trace element data reveals distinct patterns for each island. Rodrigues lavas are the most enriched in the highly incompatible trace elements, which likely reflects a lower degree of partial melting. Combined Pb-Sr isotopic compositions indicate that Mauritian Older Series lavas have a stronger Réunion-type component, while those from the Mauritian Younger and Intermediate Series, along with Rodrigues, display a contribution of a more depleted component. Lead isotopes further suggest the contribution of an enriched component in the Rodrigues basalts. Isotope mixing models reveal that the Pb isotopic signature of Rodrigues rocks is