Shuya Zhang, Yueheng Yang, Shitou Wu, Jiarun Tu, Lei Xu, Hao Wang, Liewen Xie, Chao Huang, Jinhui Yang and Fuyuan Wu
{"title":"Xenotime Xtm-NHBS:用于微束U-Pb / Lu-Hf地质年代学†的天然参考物质","authors":"Shuya Zhang, Yueheng Yang, Shitou Wu, Jiarun Tu, Lei Xu, Hao Wang, Liewen Xie, Chao Huang, Jinhui Yang and Fuyuan Wu","doi":"10.1039/D5JA00013K","DOIUrl":null,"url":null,"abstract":"<p >Xenotime is a common mineral found in various rock types, including magmatic, metamorphic, and sedimentary rocks. It is typically characterised by high uranium (U) and thorium (Th) content, with minimal common lead (Pb), making it an excellent candidate for U–Pb dating. However, the limited availability of well-characterised U–Pb xenotime reference materials (<em>e.g.</em>, BS-1 and MG-1) has hindered its wide application in microanalysis. With the rapid advancements in laser ablation inductively coupled plasma tandem mass spectrometry (LA-ICP-MS/MS), the demand for xenotime reference materials, particularly for <em>in situ</em> Lu–Hf geochronology, has grown significantly. This study presents the characterisation and assessment of Xtm-NHBS xenotime as a potential primary U–Pb reference material for microanalysis. U–Pb isotopic analyses were performed using isotope dilution thermal ionisation mass spectrometry (ID-TIMS) and laser ablation quadrupole/sector field inductively coupled plasma mass spectrometry (LA-Q/SF-ICP-MS) to evaluate the homogeneity of gem-quality xenotime crystals. The ID-TIMS analysis yielded a <small><sup>206</sup></small>Pb/<small><sup>238</sup></small>U age of 498.7 ± 0.4 Ma (2s, <em>n</em> = 5, MSWD = 0.99). The <small><sup>206</sup></small>Pb/<small><sup>238</sup></small>U ages obtained <em>via</em> LA-Q/SF-ICP-MS across multiple analytical sessions were consistent with the ID-TIMS results, demonstrating homogeneity with ∼1% precision using <em>in situ</em> techniques. Additionally, the ages of BS-1, MG-1, and XN Datas can be reproduced by LA-SF-ICP-MS when calibrated against the Xtm-NHBS crystal as a primary reference material. Meanwhile, the Lu–Hf age of this crystal by LA-ICP-MS/MS is also presented in this study. The newly characterised natural Xtm-NHBS xenotime offers a significant contribution to advancing <em>in situ</em> U–Pb/Lu–Hf geochronology, enhancing both accuracy and precision in microanalytical applications.</p>","PeriodicalId":81,"journal":{"name":"Journal of Analytical Atomic Spectrometry","volume":" 4","pages":" 931-941"},"PeriodicalIF":3.1000,"publicationDate":"2025-03-04","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Xenotime Xtm-NHBS: a natural reference material for microbeam U–Pb/Lu–Hf geochronology†\",\"authors\":\"Shuya Zhang, Yueheng Yang, Shitou Wu, Jiarun Tu, Lei Xu, Hao Wang, Liewen Xie, Chao Huang, Jinhui Yang and Fuyuan Wu\",\"doi\":\"10.1039/D5JA00013K\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p >Xenotime is a common mineral found in various rock types, including magmatic, metamorphic, and sedimentary rocks. It is typically characterised by high uranium (U) and thorium (Th) content, with minimal common lead (Pb), making it an excellent candidate for U–Pb dating. However, the limited availability of well-characterised U–Pb xenotime reference materials (<em>e.g.</em>, BS-1 and MG-1) has hindered its wide application in microanalysis. With the rapid advancements in laser ablation inductively coupled plasma tandem mass spectrometry (LA-ICP-MS/MS), the demand for xenotime reference materials, particularly for <em>in situ</em> Lu–Hf geochronology, has grown significantly. This study presents the characterisation and assessment of Xtm-NHBS xenotime as a potential primary U–Pb reference material for microanalysis. U–Pb isotopic analyses were performed using isotope dilution thermal ionisation mass spectrometry (ID-TIMS) and laser ablation quadrupole/sector field inductively coupled plasma mass spectrometry (LA-Q/SF-ICP-MS) to evaluate the homogeneity of gem-quality xenotime crystals. The ID-TIMS analysis yielded a <small><sup>206</sup></small>Pb/<small><sup>238</sup></small>U age of 498.7 ± 0.4 Ma (2s, <em>n</em> = 5, MSWD = 0.99). The <small><sup>206</sup></small>Pb/<small><sup>238</sup></small>U ages obtained <em>via</em> LA-Q/SF-ICP-MS across multiple analytical sessions were consistent with the ID-TIMS results, demonstrating homogeneity with ∼1% precision using <em>in situ</em> techniques. Additionally, the ages of BS-1, MG-1, and XN Datas can be reproduced by LA-SF-ICP-MS when calibrated against the Xtm-NHBS crystal as a primary reference material. Meanwhile, the Lu–Hf age of this crystal by LA-ICP-MS/MS is also presented in this study. 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引用次数: 0
摘要
Xenotime是一种常见的矿物,存在于各种岩石类型中,包括岩浆岩、变质岩和沉积岩。它的典型特征是铀(U)和钍(Th)含量高,普通铅(Pb)含量最低,使其成为U - Pb定年的绝佳候选者。然而,表征良好的U-Pb xenotime标准物质(如BS-1和MG-1)的有限可用性阻碍了其在微量分析中的广泛应用。随着激光烧蚀电感耦合等离子体串联质谱法(LA-ICP-MS/MS)的快速发展,对异质参考材料的需求,特别是对原位Lu-Hf地质年代学的需求显著增长。本研究介绍了Xtm-NHBS xenotime作为微量分析的潜在主要U-Pb参考物质的特性和评估。利用同位素稀释热电离质谱(ID-TIMS)和激光烧蚀四极杆/扇形场电感耦合等离子体质谱(LA-Q/SF-ICP-MS)进行U-Pb同位素分析,以评估宝石级xenotime晶体的均匀性。ID-TIMS分析得到206Pb/238U年龄498.7±0.4 Ma (2s, n = 5, MSWD = 0.99)。通过LA-Q/SF-ICP-MS在多个分析阶段获得的206Pb/238U年龄与ID-TIMS结果一致,使用原位技术显示均匀性,精度为1%。此外,当以Xtm-NHBS晶体作为主要参考物质进行校准时,LA-SF-ICP-MS可以重现BS-1, MG-1和XN数据的年龄。同时,用LA-ICP-MS/MS测定了该晶体的Lu-Hf年龄。新特性的天然Xtm-NHBS xenotime为推进原位U-Pb / Lu-Hf地质年代学做出了重大贡献,提高了微量分析应用的准确性和精密度。
Xenotime Xtm-NHBS: a natural reference material for microbeam U–Pb/Lu–Hf geochronology†
Xenotime is a common mineral found in various rock types, including magmatic, metamorphic, and sedimentary rocks. It is typically characterised by high uranium (U) and thorium (Th) content, with minimal common lead (Pb), making it an excellent candidate for U–Pb dating. However, the limited availability of well-characterised U–Pb xenotime reference materials (e.g., BS-1 and MG-1) has hindered its wide application in microanalysis. With the rapid advancements in laser ablation inductively coupled plasma tandem mass spectrometry (LA-ICP-MS/MS), the demand for xenotime reference materials, particularly for in situ Lu–Hf geochronology, has grown significantly. This study presents the characterisation and assessment of Xtm-NHBS xenotime as a potential primary U–Pb reference material for microanalysis. U–Pb isotopic analyses were performed using isotope dilution thermal ionisation mass spectrometry (ID-TIMS) and laser ablation quadrupole/sector field inductively coupled plasma mass spectrometry (LA-Q/SF-ICP-MS) to evaluate the homogeneity of gem-quality xenotime crystals. The ID-TIMS analysis yielded a 206Pb/238U age of 498.7 ± 0.4 Ma (2s, n = 5, MSWD = 0.99). The 206Pb/238U ages obtained via LA-Q/SF-ICP-MS across multiple analytical sessions were consistent with the ID-TIMS results, demonstrating homogeneity with ∼1% precision using in situ techniques. Additionally, the ages of BS-1, MG-1, and XN Datas can be reproduced by LA-SF-ICP-MS when calibrated against the Xtm-NHBS crystal as a primary reference material. Meanwhile, the Lu–Hf age of this crystal by LA-ICP-MS/MS is also presented in this study. The newly characterised natural Xtm-NHBS xenotime offers a significant contribution to advancing in situ U–Pb/Lu–Hf geochronology, enhancing both accuracy and precision in microanalytical applications.