4.7 Article

Multiple sources for the Baoshan polymetallic Cu-Mo-Pb-Zn deposit, southern Hunan Province, China: Insights from in situ LA-MC-ICP-MS sulfur isotopic compositions

期刊

ORE GEOLOGY REVIEWS
卷 143, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.oregeorev.2022.104808

关键词

Cu-Mo-Pb-Zn mineralization; Sulfur isotopic composition; Granodiorite porphyry; Basement; Baoshan deposit

资金

  1. National Natural Science Foundation of China [41830428]
  2. Foundation for Young Scientists of Jiangsu Province [BK20180511]
  3. National Science Foundation for Young Scientists of China [41803037, 41806076]
  4. Fundamental Research Fund for Central Universities [B210202136]
  5. Open Research Fund Program of State Key Laboratory for Mineral Deposits Research, Nanjing University [2020-LAMD-K05]

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Southern Hunan Province in China is known for its extensive Mesozoic magmatic rocks and polymetallic deposits. This study focuses on the characteristics of mineralization in this area, particularly the relation between proximal skarn-hosted Cu-Mo and distal carbonate-hosted Pb-Zn mineralization. The research utilizes high-resolution in situ LA-MC-ICP-MS sulfur isotopic compositions to analyze different types of sulfide from the Baoshan polymetallic Cu-Mo-Pb-Zn deposit. The results indicate that the mineralization in the Baoshan deposit is influenced by granodiorite porphyry, carbonate strata, and metamorphic or crystalline basement, with different sulfur isotopic compositions.
Southern Hunan Province, China, is characterized by extensive Mesozoic magmatic rocks and coeval polymetallic deposits, including granite-related W-Sn and granodiorite-porphyry-related Cu-Mo-Pb-Zn mineralization. It is commonly accepted that ore-forming materials for Cu-Mo-Pb-Zn mineralization in the southern Hunan area were generally dominated by granodiorite porphyry, owing to the close spatial and temporal relationship between the two. However, the detailed mineralization process for this type of deposit remains unclear, especially with respect to the relationship between the proximal skarn-hosted Cu-Mo and distal carbonate-hosted Pb-Zn mineralization. In this study, high-resolution in situ LA-MC-ICP-MS sulfur isotopic compositions for different types of sulfide from the typical Baoshan polymetallic Cu-Mo-Pb-Zn deposit are used to investigate the characteristics of mineralization in this area. Our results show that three endmembers with distinct delta S-34 values contributed to the formation of the Baoshan deposit: (1) granodiorite porphyry with moderate delta S-34 values (2.6% to 3.7%), (2) carbonate strata with high delta S-34 values (3.8% to 22.7%), and (3) metamorphic or crystalline basement with low delta S-34 values ( 7.0% to 4.5%). Molybdenite from the proximal skarn-hosted Mo mineralization has high delta S-34 values ranging from 3.6% to 6.6%, whereas pyrite (1.0% to 4.8%), chalcopyrite ( 1.1% to 4.4%), sphalerite (1.9% to 4.2%), and galena (0.2% to 4.8%) from both the proximal skarn-hosted and distal carbonate-hosted Cu-Pb-Zn mineralization have wide-ranging delta S-34 values depending on their locations. These values suggest that the granodiorite porphyry and carbonate sources dominated the sulfur input for the entire Mo mineralization and that the granodiorite porphyry source dominated most of the Cu-Pb-Zn mineralization with similar or higher delta S-34 values in the Baoshan deposit, with some contribution from the carbonate strata for the latter mineralization. Deep-seated metamorphic or crystalline basement likely provided sulfur for the other parts of the Cu-Pb-Zn mineralization with low delta S-34 values. In addition to the contributions by granodiorite porphyry and carbonate strata, our study emphasizes the substantial contribution of basement rock materials to Cu-Mo-Pb-Zn mineralization. The ore-forming materials accumulated in the basement by the intrusion of early mafic magmas, which were then added to the Baoshan granodioritic magmas by remelting and mingling with these magmas. Ore-forming materials may also have been extracted from the basement by hydrothermal circulation triggered by the intrusion of these late granodioritic magmas.

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