Iron Isotope Fractionation during Skarn Cu-Fe Mineralization

被引:8
作者
Xue, Song [1 ]
Niu, Yaoling [1 ,2 ,3 ]
Chen, Yanhong [1 ]
Shi, Yining [1 ]
Xia, Boyang [1 ]
Wang, Peiyao [3 ,4 ,5 ]
Gong, Hongmei [3 ,4 ,5 ]
Wang, Xiaohong [3 ,4 ,5 ]
Duan, Meng [3 ,4 ,5 ]
机构
[1] China Univ Geosci, Sch Earth Sci & Resources, Beijing 100083, Peoples R China
[2] Univ Durham, Dept Earth Sci, Durham DH1 3LE, England
[3] Lab Marine Geol, Qingdao Natl Lab Marine Sci & Technol, Qingdao 266061, Peoples R China
[4] Chinese Acad Sci, Inst Oceanol, Qingdao 266071, Peoples R China
[5] Chinese Acad Sci, Ctr Ocean Megasci, 7 Nanhai Rd, Qingdao 266071, Peoples R China
关键词
porphyry-skarn deposits; Fe isotopes; isotopic fractionation; pathway effects; light-Fe fluid; redox state; GEOLOGICAL REFERENCE MATERIALS; HYDROTHERMAL ORE-DEPOSITS; MAFIC LAYERED INTRUSION; EAST PACIFIC RISE; MAGMATIC DIFFERENTIATION; PYRITE FORMATION; ICP-MS; MANTLE; SYSTEMATICS; MAGNETITE;
D O I
10.3390/min11050444
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
Fe isotopes have been applied to the petrogenesis of ore deposits. However, the behavior of iron isotopes in the mineralization of porphyry-skarn deposits is still poorly understood. In this study, we report the Fe isotopes of ore mineral separations (magnetite, pyrite, chalcopyrite and pyrrhotite) from two different skarn deposits, i.e., the Tonglvshan Cu-Fe skarn deposit developed in an oxidized hydrothermal system and the Anqing Cu skarn deposit developed in a reduced hydrothermal system. In both deposits, the Fe isotopes of calculated equilibrium fluids are lighter than those of the intrusions responsible for the skarn and porphyry mineralization, corroborating the "light-Fe fluid" hypothesis. Interestingly, chalcopyrite in the oxidized-Tonglvshan skarn deposit has lighter Fe than chalcopyrite in the reduced-Anqing skarn deposit, which is best understood as the result of the prior precipitation of magnetite (heavy Fe) from the ore fluid in the oxidized-Tonglvshan systems and the prior precipitation of pyrrhotite (light Fe) from the ore fluid in the reduced-Anqing system. The delta Fe-56 for pyrite shows an inverse correlation with delta Fe-56 of magnetite in the Tonglvshan. In both deposits, the Fe isotope fractionation between chalcopyrite and pyrite is offset from the equilibrium line at 350 degrees C and lies between the FeS-chalcopyrite equilibrium line and pyrite-chalcopyrite equilibrium line at 350 degrees C. These observations are consistent with the FeS pathway towards pyrite formation. That is, Fe isotopes fractionation during pyrite formation depends on a path from the initial FeS-fluid equilibrium towards the pyrite-fluid equilibrium due to the increasing extent of Fe isotopic exchange with fluids. This finding, together with the data from other deposits, allows us to propose that the pathway effect of pyrite formation in the Porphyry-skarn deposit mineralization is the dominant mechanism that controls Fe isotope characteristics.
引用
收藏
页数:18
相关论文
共 50 条
[41]   Iron and nickel isotope fractionation by diffusion, with applications to iron meteorites [J].
Watson, Heather C. ;
Richter, Frank ;
Liu, Ankun ;
Huss, Gary R. .
EARTH AND PLANETARY SCIENCE LETTERS, 2016, 451 :159-167
[42]   Iron isotope fractionation between aqueous ferrous iron and goethite [J].
Beard, Brian L. ;
Handler, Robert M. ;
Scherer, Michelle M. ;
Wu, Lingling ;
Czaja, Andrew D. ;
Heimann, Adriana ;
Johnson, Clark M. .
EARTH AND PLANETARY SCIENCE LETTERS, 2010, 295 (1-2) :241-250
[43]   Iron isotope fractionation during fluid metasomatism and ore-forming processes in magmatic-hydrothermal systems [J].
Liao, Wang ;
Zhao, Xin-Fu ;
Zeng, Li-Ping ;
Weyer, Stefan ;
Zhang, Chao ;
Horn, Ingo ;
Holtz, Francois .
GEOCHIMICA ET COSMOCHIMICA ACTA, 2023, 355 :161-172
[44]   Iron isotope fractionation during the formation of ferromanganese nodules under different conditions of hydromorphism [J].
Sipos, Peter ;
Kovacs, Ivett ;
Barna, Gyongyi ;
Toth, Adrienn ;
Mako, Andras ;
Palcsu, Laszlo ;
Kiss, Gabriella ;
Horvath, Aniko ;
Puskas-Preszner, Anita .
GEODERMA, 2023, 430
[45]   The role of bacterial consortium and organic amendment in Cu and Fe isotope fractionation in plants on a polluted mine site [J].
Nathalie Pérez Rodríguez ;
Francesca Langella ;
Ilia Rodushkin ;
Emma Engström ;
Erika Kothe ;
Lena Alakangas ;
Björn Öhlander .
Environmental Science and Pollution Research, 2014, 21 :6836-6844
[46]   Mineral Chemistry of the Lower Cretaceous Jinling Iron Skarn Deposit, Western Shandong Province, North China Craton: Implications for the Iron Skarn Mineralization Process [J].
Cui, Fang-Hua ;
Zhang, Chao ;
Jin, Dai-Tian ;
Wang, Lu-Yuan ;
Gao, Ji-Lei ;
Ma, Ming ;
Li, Ya-Dong .
MINERALS, 2022, 12 (09)
[47]   Iron isotope fractionation in anoxygenic phototrophic Fe(II) oxidation by Rhodobacter ferrooxidans SW2 [J].
Han, Xiaohua ;
He, Yongsheng ;
Li, Jinhua ;
Kappler, Andreas ;
Pan, Yongxin .
GEOCHIMICA ET COSMOCHIMICA ACTA, 2022, 332 :355-368
[48]   Iron isotope fractionation between liquid and vapor phases of iron pentacarbonyl [J].
Wiesli, Rene A. ;
Beard, Brian L. ;
Braterman, Paul S. ;
Johnson, Clark M. ;
Saha, Susanta K. ;
Sinha, Mahadeva P. .
TALANTA, 2007, 71 (01) :90-96
[49]   Contrasting lithium and magnesium isotope fractionation during continental weathering [J].
Teng, Fang-Zhen ;
Li, Wang-Ye ;
Rudnick, Roberta L. ;
Gardner, L. Robert .
EARTH AND PLANETARY SCIENCE LETTERS, 2010, 300 (1-2) :63-71
[50]   Potassium isotope fractionation during magmatic differentiation of basalt to rhyolite [J].
Tuller-Ross, Brenna ;
Savage, Paul S. ;
Chen, Heng ;
Wang, Kun .
CHEMICAL GEOLOGY, 2019, 525 :37-45