Columbite SN3: A New Potential Reference Material for U‐Pb Dating by LA‐ICP‐MS
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R. Romer | Rucheng Wang | Huan Hu | Xudong Che | Lu Xiang | Zhimin Tang
[1] Yue-heng Yang,et al. Natural Allanite Reference Materials for In Situ U‐Th‐Pb and Sm‐Nd Isotopic Measurements by LA‐(MC)‐ICP‐MS , 2022, Geostandards and Geoanalytical Research.
[2] Rucheng Wang,et al. Paragenesis of Li minerals in the Nanyangshan rare-metal pegmatite, Northern China: Toward a generalized sequence of Li crystallization in Li-Cs-Ta-type granitic pegmatites , 2022, American Mineralogist.
[3] Pengju Li,et al. Compositional evolution of the muscovite of Renli pegmatite-type rare-metal deposit, northeast Hunan, China: Implications for its petrogenesis and mineralization potential , 2021 .
[4] K. Qin,et al. Mineralogy of columbite-group minerals from the rare-element pegmatite dykes in the East-Qinling orogen, central China: Implications for formation times and ore genesis , 2021 .
[5] Yue-heng Yang,et al. Precise and accurate Lu–Hf isotope analysis of columbite-group minerals by MC-ICP-MS , 2021 .
[6] Chao Huang,et al. Accurate and precise in situ U–Pb isotope dating of wolframite series minerals via LA-SF-ICP-MS , 2020 .
[7] R. Linnen,et al. LA-ICP-MS dating of high‑uranium columbite from no. 1 pegmatite at Dakalasu, the Chinese Altay orogen: Assessing effect of metamictization on age concordance , 2020 .
[8] Lei Xie,et al. Neoproterozoic Nb-Ta-W-Sn bearing tourmaline leucogranite in the western part of Jiangnan Orogen: Implications for episodic mineralization in South China , 2020, Lithos.
[9] Congyu Liu,et al. Tantalum and niobium mineralization from F- and Cl-rich fluid in the lepidolite-rich pegmatite from the Renli deposit in northern Hunan, China: Constraints of fluid inclusions and lepidolite crystallization experiments , 2019 .
[10] P. Li,et al. Mineralization Epochs of Granitic Rare-Metal Pegmatite Deposits in the Songpan–Ganzê Orogenic Belt and Their Implications for Orogeny , 2019, Minerals.
[11] S. Dewaele,et al. U-Pb isotopic dating of columbite-tantalite minerals: Development of reference materials and in situ applications by ion microprobe , 2019, Chemical Geology.
[12] Lei Xie,et al. Episodic Nb–Ta mineralisation in South China: Constraints from in situ LA–ICP–MS columbite-tantalite U–Pb dating , 2019, Ore Geology Reviews.
[13] T. Oberthür,et al. Mineralogical and chemical evolution of tantalum–(niobium–tin) mineralisation in pegmatites and granites. Part 2: Worldwide examples (excluding Africa) and an overview of global metallogenetic patterns , 2017 .
[14] P. Olivier,et al. U-Pb geochronology on zircon and columbite-group minerals of the Cap de Creus pegmatites, NE Spain , 2017, Mineralogy and Petrology.
[15] J. Bowring,et al. Community‐Derived Standards for LA‐ICP‐MS U‐(Th‐)Pb Geochronology – Uncertainty Propagation, Age Interpretation and Data Reporting , 2016 .
[16] R. Shaw,et al. Petrogenesis of rare-metal pegmatites in high-grade metamorphic terranes: A case study from the Lewisian Gneiss Complex of north-west Scotland , 2016 .
[17] Hao Hu,et al. U–Pb isotope and trace element analysis of columbite-(Mn) and zircon by laser ablation ICP–MS: Implications for geochronology of pegmatite and associated ore deposits , 2013 .
[18] Hans-Eike Gäbler,et al. Speeding Up the Analytical Workflow for Coltan Fingerprinting by an Integrated Mineral Liberation Analysis/LA‐ICP‐MS Approach , 2011 .
[19] P. Muchez,et al. Late Neoproterozoic overprinting of the cassiterite and columbite-tantalite bearing pegmatites of the Gatumba area, Rwanda (Central Africa) , 2011 .
[20] Shan Gao,et al. In situ analysis of major and trace elements of anhydrous minerals by LA-ICP-MS without applying an internal standard , 2008 .
[21] R. Romer,et al. COLUMBITE–TANTALITE-BEARING GRANITIC PEGMATITES FROM THE SERIDÓ BELT, NORTHEASTERN BRAZIL: GENETIC CONSTRAINTS FROM U–Pb DATING AND Pb ISOTOPES , 2006 .
[22] W. Davis. Geochronology: Linking the isotopic record with Petrology and Textures , 2005 .
[23] S. Kelley,et al. U-Pb columbite-tantalite chronology of rare-element pegmatites using TIMS and Laser Ablation-Multi Collector-ICP-MS , 2004 .
[24] S. Siegesmund,et al. Why allanite may swindle about its true age , 2003 .
[25] G. Foster,et al. Common-Pb corrected in situ U–Pb accessory mineral geochronology by LA-MC-ICP-MS , 2003 .
[26] R. Romer. Alpha-recoil in U–Pb geochronology: effective sample size matters , 2003 .
[27] R. Romer,et al. Late‐orogenic Svecofennian deformation in SW Finland constrained by pegmatite emplacement ages , 1996 .
[28] R. Romer,et al. Implications of UPb ages of columbite-tantalites from granitic pegmatites for the Palaeoproterozoic accretion of 1.90–1.85 Ga magmatic arcs to the Baltic Shield , 1994 .
[29] J. Kramers,et al. Approximation of terrestrial lead isotope evolution by a two-stage model , 1975 .
[30] G. Tilton,et al. RADIOACTIVE AGES OF MINERALS FROM THE BROWN DERBY , 1956 .
[31] F. A. Lindemann,et al. The Age of the Earth , 1893, Nature.
[32] A. Kemp,et al. U-Pb and reconnaissance Lu-Hf isotope analysis of cassiterite and columbite group minerals from Archean Li-Cs-Ta type pegmatites of Western Australia , 2020 .
[33] S. Tapster,et al. a low-contamination hydrothermal decomposition : implications for LA-ICP-MS and ore deposit geochronology , 2020 .
[34] P. Li,et al. Geochronology and source of the rare-metal pegmatite in the Mufushan area of the Jiangnan orogenic belt: A case study of the giant Renli Nb–Ta deposit in Hunan, China , 2020 .
[35] T. Oberthür,et al. Tantalum–(niobium–tin) mineralisation in African pegmatites and rare metal granites: Constraints from Ta–Nb oxide mineralogy, geochemistry and U–Pb geochronology , 2015 .
[36] R. Romer,et al. Effect of metamorphic reaction history on the U-Pb dating of titanite , 2003, Geological Society, London, Special Publications.
[37] R. Romer,et al. U_Pb columbite ages of pegmatites from Sveconorwegian terranes in southwestern Sweden , 1996 .