Molybdenite Re-Os dating and LA-ICP-MS trace element study of sulfide minerals from the Zijinshan high-sulfidation epithermal Cu-Au deposit, Fujian Province, China

被引:13
|
作者
Zhao, Xiao-Yu [1 ,2 ]
Zhong, Hong [1 ,2 ]
Mao, Wei [1 ]
Bai, Zhong-Jie [1 ]
Xue, Kai [3 ]
机构
[1] Chinese Acad Sci, Inst Geochem, State Key Lab Ore Deposit Geochem, Guiyang 550081, Peoples R China
[2] Univ Chinese Acad Sci, Beijing 100049, Peoples R China
[3] Zijin Min Grp Co Ltd, Shanghang 364200, Peoples R China
基金
国家重点研发计划; 中国国家自然科学基金;
关键词
High-sulfidation epithermal Cu-Au deposit; Molybdenite Re-Os age; Sulfides; In-situ trace elements; Zijinshan; FLUID INCLUSION; MO DEPOSIT; GOLD DEPOSIT; SOUTH CHINA; ORE FIELD; HYDROTHERMAL FIELD; SW FUJIAN; SE CHINA; PORPHYRY; PYRITE;
D O I
10.1016/j.oregeorev.2020.103363
中图分类号
P5 [地质学];
学科分类号
0709 ; 081803 ;
摘要
The Zijinshan Cu-Au deposit, located in Fujian Province, is the largest high-sulfidation epithermal (HSE) deposit in Southeastern China and is usually regarded as a major part of the porphyry Cu system in the Zijinshan ore field. Molybdenite samples collected from the Cu mineralization zone yield a first weighted mean Re-Os age of 111.31 +/- 0.70 Ma, which is explained as the time of dickite-alunite alteration. Combining the newly reported muscovite 40Ar-39Ar and zircon U-Pb ages (similar to 113 Ma), the mineralization of Zijinshan is likely to initiate before ca. 110 Ma. This result is obviously older than the Re-Os age of the adjacent Luoboling porphyry Cu-Mo deposit (similar to 105 Ma). Pyrite, chalcopyrite, bomite, digenite, and covellite collected from the deep potassic, middle phyllic and upper epithermal zones are used to conduct LA-ICP-MS trace element analysis. The spatial zonings of mineralization and alteration and the regular variations of trace elements in sulfides at vertical direction imply a potentially complete transition from porphyry to epithermal mineralization and the deep origin of ore-forming fluids. Mineralogical and trace element characteristics indicate that the chalcopyrite formed in both stages, whereas bomite is the product of epithermal mineralization, rather than a porphyry stage residue. The majority of digenite and covellite has hypogene genesis. Pyrite and digenite in the epithermal zone are major carriers of primary Au. Au in pyrite is Te-Bi related and exists as solid solutions or different-sized telluride and Bi-sulfosalt inclusions. Compared to As, Te and Bi played more important roles to scavenge Au and Ag and achieve the primary Au enrichment. Differently, Au in digenite is independently locked in digenite lattice. Bornite and digenite are good carriers of primary Ag, which mainly exists as solid solutions. The high sulfidation state stage is the major period for concentrations of primary Au and Ag. The upward increase of Au in primary sulfides of HSE Cu zone implies that the distribution pattern of upper Au enrichment and lower Cu enrichment is not only caused by supergene process, but is also controlled by hypogene trend. Based on the mineralization and alteration zonings, the spatial variation of trace elements and the presented Re-Os age, the ore-forming fluids of the Zijinshan Cu-Au deposit most likely originate from deep region, rather than from the adjacent Luoboling porphyry deposit. The Zijinshan and the Luoboling deposits should belong to two independent hydrothermal systems. The Zijinshan Cu-Au deposit, located in Fujian Province, is the largest high-sulfidation epithermal (HSE) deposit in Southeastern China and is usually regarded as a major part of the porphyry Cu system in the Zijinshan ore field. Molybdenite samples collected from the Cu mineralization zone yield a first weighted mean Re-Os age of 111.31 +/- 0.70 Ma, which is explained as the time of dickite-alunite alteration. Combining the newly reported muscovite 40Ar-39Ar and zircon U-Pb ages (similar to 113 Ma), the mineralization of Zijinshan is likely to initiate before ca. 110 Ma. This result is obviously older than the Re-Os age of the adjacent Luoboling porphyry Cu-Mo deposit (similar to 105 Ma). Pyrite, chalcopyrite, bomite, digenite, and covellite collected from the deep potassic, middle phyllic and upper epithermal zones are used to conduct LA-ICP-MS trace element analysis. The spatial zonings of mineralization and alteration and the regular variations of trace elements in sulfides at vertical direction imply a potentially complete transition from porphyry to epithermal mineralization and the deep origin of ore-forming fluids. Mineralogical and trace element characteristics indicate that the chalcopyrite formed in both stages, whereas bomite is the product of epithermal mineralization, rather than a porphyry stage residue. The majority of digenite and covellite has hypogene genesis. Pyrite and digenite in the epithermal zone are major carriers of primary Au. Au in pyrite is Te-Bi related and exists as solid solutions or different-sized telluride and Bi-sulfosalt inclusions. Compared to As, Te and Bi played more important roles to scavenge Au and Ag and achieve the primary Au enrichment. Differently, Au in digenite is independently locked in digenite lattice. Bornite and digenite are good carriers of primary Ag, which mainly exists as solid solutions. The high sulfidation state stage is the major period for concentrations of primary Au and Ag. The upward increase of Au in primary sulfides of HSE Cu zone implies that the distribution pattern of upper Au enrichment and lower Cu enrichment is not only caused by supergene process, but is also controlled by hypogene trend. Based on the mineralization and alteration zonings, the spatial variation of trace elements and the presented Re-Os age, the ore-forming fluids of the Zijinshan Cu-Au deposit most likely originate from deep region, rather than from the adjacent Luoboling porphyry deposit. The Zijinshan and the Luoboling deposits should belong to two independent hydrothermal systems. The Zijinshan Cu-Au deposit, located in Fujian Province, is the largest high-sulfidation epithermal (HSE) deposit in Southeastern China and is usually regarded as a major part of the porphyry Cu system in the Zijinshan ore field. Molybdenite samples collected from the Cu mineralization zone yield a first weighted mean Re-Os age of 111.31 +/- 0.70 Ma, which is explained as the time of dickite-alunite alteration. Combining the newly reported muscovite 40Ar-39Ar and zircon U-Pb ages (similar to 113 Ma), the mineralization of Zijinshan is likely to initiate before ca. 110 Ma. This result is obviously older than the Re-Os age of the adjacent Luoboling porphyry Cu-Mo deposit (similar to 105 Ma). Pyrite, chalcopyrite, bomite, digenite, and covellite collected from the deep potassic, middle phyllic and upper epithermal zones are used to conduct LA-ICP-MS trace element analysis. The spatial zonings of mineralization and alteration and the regular variations of trace elements in sulfides at vertical direction imply a potentially complete transition from porphyry to epithermal mineralization and the deep origin of ore-forming fluids. Mineralogical and trace element characteristics indicate that the chalcopyrite formed in both stages, whereas bomite is the product of epithermal mineralization, rather than a porphyry stage residue. The majority of digenite and covellite has hypogene genesis. Pyrite and digenite in the epithermal zone are major carriers of primary Au. Au in pyrite is Te-Bi related and exists as solid solutions or different-sized telluride and Bi-sulfosalt inclusions. Compared to As, Te and Bi played more important roles to scavenge Au and Ag and achieve the primary Au enrichment. Differently, Au in digenite is independently locked in digenite lattice. Bornite and digenite are good carriers of primary Ag, which mainly exists as solid solutions. The high sulfidation state stage is the major period for concentrations of primary Au and Ag. The upward increase of Au in primary sulfides of HSE Cu zone implies that the distribution pattern of upper Au enrichment and lower Cu enrichment is not only caused by supergene process, but is also controlled by hypogene trend. Based on the mineralization and alteration zonings, the spatial variation of trace elements and the presented Re-Os age, the ore-forming fluids of the Zijinshan Cu-Au deposit most likely originate from deep region, rather than from the adjacent Luoboling porphyry deposit. The Zijinshan and the Luoboling deposits should belong to two independent hydrothermal systems.
引用
下载
收藏
页数:17
相关论文
共 50 条
  • [31] Caledonian diagenetic and metallogenic events in Datong district in the western Kunlun: Evidences from LA-ICP-MS zircon U-Pb dating and molybdenite Re-Os dating.
    Yu XiaoFei
    Sun FengYue
    Li BiLe
    Ding QingFeng
    Chen GuangJun
    Ding ZhengJiang
    Chen Jing
    Huo Liang
    ACTA PETROLOGICA SINICA, 2011, 27 (06) : 1770 - 1778
  • [32] Sm-Nd Dating and In-Situ LA-ICP-MS Trace Element Analyses of Scheelite from the Longshan Sb-Au Deposit, Xiangzhong Metallogenic Province, South China
    Zhang, Zhiyuan
    Xie, Guiqing
    Mao, Jingwen
    Liu, Wengang
    Olin, Paul
    Li, Wei
    MINERALS, 2019, 9 (02):
  • [33] New perspective on trace element (Re, Ge, Ag) hosts in the Cu-Ag Kupferschiefer deposit, Poland: Insight from a LA-ICP-MS trace element study
    Foltyn, Krzysztof
    Erlandsson, Viktor Bertrandsson
    Zygo, Wladyslaw
    Melcher, Frank
    Pieczonka, Jadwiga
    ORE GEOLOGY REVIEWS, 2022, 143
  • [34] Trace element chemistry, polytypes, isotopic composition and Re-Os dates of molybdenite from the Bingham Canyon Cu-Au-Mo porphyry deposit, Utah
    Kocher, Simon
    Wilkinson, Jamie J.
    Armstrong, Robin N.
    McDonald, Lain
    Rehkaemper, Mark
    Creaser, Robert A.
    Lode, Jens Najorka
    LIFE WITH ORE DEPOSITS ON EARTH, PROCEEDINGS OF THE 15TH SGA BIENNIAL MEETING, 2019, VOLS 1-4, 2019, : 1120 - 1123
  • [35] Optical cathodoluminescence petrography, combined with SEM and LA-ICP-MS analyses: a case study from the Elatsite porphyry Cu-Au deposit
    Stefanova, Elitsa
    Kadiyski, Milen
    Georgiev, Stoyan
    Hikov, Atanas
    Georgieva, Sylvina
    Peytcheva, Irena
    SPISANIE NA B LGARSKOTO GEOLOGICHESKO DRUZHESTOV-REVIEW OF THE BULGARIAN GEOLOGICAL SOCIETY, 2022, 83 : 117 - 120
  • [36] Metallogenic epoch of the carbonatite-type Mo-U polymetallic deposit in east Qinling: evidence from the monazite LA-ICP-MS U-Pb and molybdenite Re-Os isotopic dating
    Wang J.
    Li Z.
    Zhang Q.
    Li C.
    Xie Y.
    Li G.
    Zeng W.
    Ding N.
    Li, Zhidan (cugcug@qq.com), 1600, Geological Society of China (94): : 2946 - 2964
  • [37] Fingerprinting the Hydrothermal Fluid Characteristics from LA-ICP-MS Trace Element Geochemistry of Garnet in the Yongping Cu Deposit, SE China
    Zhang, Yu
    Liu, Qingquan
    Shao, Yongjun
    Li, Hongbin
    MINERALS, 2017, 7 (10)
  • [38] Zircon U-Pb, Molybdenite Re-Os and K-feldspar 40Ar/39Ar Dating of the Bolong Porphyry Cu-Au Deposit, Tibet, China
    Zhu, Xiangping
    Li, Guangming
    Chen, Huaan
    Ma, Dongfang
    Huang, Hanxiao
    RESOURCE GEOLOGY, 2015, 65 (02) : 122 - 135
  • [39] LA-ICP-MS trace element mapping: Element mobility of hydrothermal magnetite from the giant Beiya Fe-Au skarn deposit, SW China
    Li, Denfeng
    Fu, Yu
    Sun, Xiaoming
    Hollings, Pete
    Liao, Jianlin
    Liu, Qiaofen
    Feng, Yuzhou
    Liu, Ying
    Lai, Chunkit
    ORE GEOLOGY REVIEWS, 2018, 92 : 463 - 474
  • [40] Zircon LA-ICP-MS U-Pb ages and geochemical characteristics of quartz syenite porphyry from Jintonghu deposit in Zijinshan ore field, Fujian Province, South China.
    Wu LiYan
    Hu RuiZhong
    Qi YouQiang
    Zhu JingJing
    ACTA PETROLOGICA SINICA, 2013, 29 (12) : 4151 - 4166